Professional Student of the Year recipient uses nanotechnology to create clean water – KSU | The Sentinel Newspaper

KSU's Department of Mechanical Engineering named senior Ian Durr Professional Student of the Year after completing work with his mentor on a research-intensive nanotechnology project. Photo credit: Photo Courtesy of Hillary Joy Photography

Kennesaw States Department of Mechanical Engineering named senior mechanical engineering major Ian Durr the Professional Student of the Year in early February after conducting nanotechnology research to provide clean water.

For a little over a year, Durr said he has been working with his mentor, KSU Assistant Professor of mechanical engineering Jungkyu Park, on a research-intensive nanotechnology project.

We simulate carbon 3D nanostructures in the use of desalination of salt water, Durr said. The research project makes clean water in an environmentally friendly method and it inadvertently reduces the cost of operation too.

Initially, Durr was drawn towards the aerospace field like his father, who was his first role model. Over time, Durr unexpectedly discovered his own passion at KSU.

I wanted to become more involved in the success of the project as it had a global outreach and a worthy cause, Durr said. One of the goals was to provide clean drinking water in less privileged third world countries. Helping society and making a difference in peoples lives are things that resonated with me immediately.

Durr said he could not be more appreciative of KSU, as the school provided him the mentors, resources, materials and opportunities to grow personally and professionally.

Durr found his first co-op job at the KSU career fair with WorkingBuildings, a consulting firm based in Midtown Atlanta. He went on to complete three co-op rotations at the same firm.

As a role model for other students, Durrs passion and determination to succeed helped him achieve his goals. Durr shared that he was an inquisitive student in every class and engaged with his professors until he had a deeper understanding of the subject.

A valuable lesson I want other students to know is that, as a student, you have to give it your all and be passionate about your studies and the content, Durr said. Do not be hard on yourself for not getting that 4.0 GPA. The grades will come and results will follow if students focus on getting the knowledge first.

Emphasizing how students should explore various avenues in engineering, Durr explained how he came out of the program with more engineering experience in healthcare, rather than aerospace.

Durr said he observed that engineers do not get the recognition they deserve in healthcare. When someone goes into a hospital, they think of doctors and nurses, but engineers play an important role as well.

In my role as a co-op engineer, some of my responsibilities included certifying labs in Manhattan where the CDC is currently conducting tests for the coronavirus, Durr said. I checked fire dampers in healthcare facilities in Atlanta to make sure they were up to standard code.

While Durr feels a sense of pride that comes from being recognized by his mentors, coworkers and fellow students, he knows he has more to achieve. In the future, he wants to continue making a difference in peoples lives.

WorkingBuildings has offered him a full-time position upon graduation as an Associate Commissioning Authority, Durr said.

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Professional Student of the Year recipient uses nanotechnology to create clean water - KSU | The Sentinel Newspaper

Nanotechnology in Drug Delivery Market Growing Technology Trends and Business Opportunities by 2025 – Jewish Life News

ReportsWeb delivers well-researched industry-wide information on the Nanotechnology in Drug Delivery market. It studies the markets essential aspects such as top participants, expansion strategies, business models, and other market features to gain improved market insights. Additionally, it focuses on the latest advancements in the sector and technological development, executive tools, and tactics that can enhance the performance of the sectors.

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Potential Impact of COVID-19 on Nanotechnology in Medical Equipment Market | Growth Drivers, Business Strategies and Future Prospects 2026 – Jewish…

Due to the pandemic, we have included a special section on the Impact of COVID 19 on the Nanotechnology in Medical Equipment Market which would mention How the Covid-19 is Affecting the Nanotechnology in Medical Equipment Industry, Market Trends and Potential Opportunities in the COVID-19 Landscape, Covid-19 Impact on Key Regions and Proposal for Nanotechnology in Medical Equipment Players to Combat Covid-19 Impact.

The Global Nanotechnology in Medical Equipment Market has been garnering remarkable momentum in the recent years. The steadily escalating demand due to improving purchasing power is projected to bode well for the global market. QY Researchs latest publication, Titled [Nanotechnology in Medical Equipment Market Research Report 2020], offers an insightful take on the drivers and restraints present in the market. It assesses the historical data pertaining to the global Nanotechnology in Medical Equipment market and compares it to the current market trends to give the readers a detailed analysis of the trajectory of the market. A team subject-matter experts have provided the readers a qualitative and quantitative data about the market and the various elements associated with it.

Global Nanotechnology in Medical Equipment Market is valued at USD XX million in 2020 and is projected to reach USD XX million by the end of 2026, growing at a CAGR of XX% during the period 2020 to 2026.

Top Key Players of the Global Nanotechnology in Medical Equipment Market:Stryker Corporation, 3M, Abbott, Thermo Fisher Scientific, PerkinElmer, Inc., Starkey Hearing Technologies, Smith + Nephew, Dentsply International, Mitsui Chemicals, Inc., AAP Implantate AG

>>Get Sample Copy of the Report to understand the structure of the complete report (Including Full TOC, Table & Figures):https://www.qyresearch.com/sample-form/form/1673653/covid-19-impact-on-global-nanotechnology-in-medical-equipment-market

The Essential Content Covered in the Global Nanotechnology in Medical Equipment Market Report:Top Key Company Profiles.Main Business and Rival InformationSWOT Analysis and PESTEL AnalysisProduction, Sales, Revenue, Price and Gross MarginMarket Size And Growth RateCompany Market Share

Global Nanotechnology in Medical Equipment Market Segmentation By Product:Active Implantable Medical Equipments, Biochip, Portable Material

Global Nanotechnology in Medical Equipment Market Segmentation By Application:Treatment Using, Diagnostic Using, Research Using

In terms of region, this research report covers almost all the major regions across the globe such as North America, Europe, South America, the Middle East, and Africa and the Asia Pacific. Europe and North America regions are anticipated to show an upward growth in the years to come. While Nanotechnology in Medical Equipment Market in Asia Pacific regions is likely to show remarkable growth during the forecasted period. Cutting edge technology and innovations are the most important traits of the North America region and thats the reason most of the time the US dominates the global markets.Nanotechnology in Medical Equipment Market in South, America region is also expected to grow in near future.

Key questions answered in the report*What will be the market size in terms of value and volume in the next five years?*Which segment is currently leading the market?*In which region will the market find its highest growth?*Which players will take the lead in the market?*What are the key drivers and restraints of the markets growth?

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Table of Content

1 Report Overview1.1 Study Scope1.2 Key Market Segments1.3 Players Covered: Ranking by Nanotechnology in Medical Equipment Revenue1.4 Market Analysis by Type1.4.1 Global Nanotechnology in Medical Equipment Market Size Growth Rate by Type: 2020 VS 20261.4.2 Active Implantable Medical Equipments1.4.3 Biochip1.4.4 Portable Material1.5 Market by Application1.5.1 Global Nanotechnology in Medical Equipment Market Share by Application: 2020 VS 20261.5.2 Treatment Using1.5.3 Diagnostic Using1.5.4 Research Using1.6 Coronavirus Disease 2019 (Covid-19): Nanotechnology in Medical Equipment Industry Impact1.6.1 How the Covid-19 is Affecting the Nanotechnology in Medical Equipment Industry1.6.1.1 Nanotechnology in Medical Equipment Business Impact Assessment Covid-191.6.1.2 Supply Chain Challenges1.6.1.3 COVID-19s Impact On Crude Oil and Refined Products1.6.2 Market Trends and Nanotechnology in Medical Equipment Potential Opportunities in the COVID-19 Landscape1.6.3 Measures / Proposal against Covid-191.6.3.1 Government Measures to Combat Covid-19 Impact1.6.3.2 Proposal for Nanotechnology in Medical Equipment Players to Combat Covid-19 Impact1.7 Study Objectives1.8 Years Considered

2 Global Growth Trends by Regions2.1 Nanotechnology in Medical Equipment Market Perspective (2015-2026)2.2 Nanotechnology in Medical Equipment Growth Trends by Regions2.2.1 Nanotechnology in Medical Equipment Market Size by Regions: 2015 VS 2020 VS 20262.2.2 Nanotechnology in Medical Equipment Historic Market Share by Regions (2015-2020)2.2.3 Nanotechnology in Medical Equipment Forecasted Market Size by Regions (2021-2026)2.3 Industry Trends and Growth Strategy2.3.1 Market Top Trends2.3.2 Market Drivers2.3.3 Market Challenges2.3.4 Porters Five Forces Analysis2.3.5 Nanotechnology in Medical Equipment Market Growth Strategy2.3.6 Primary Interviews with Key Nanotechnology in Medical Equipment Players (Opinion Leaders)

3 Competition Landscape by Key Players3.1 Global Top Nanotechnology in Medical Equipment Players by Market Size3.1.1 Global Top Nanotechnology in Medical Equipment Players by Revenue (2015-2020)3.1.2 Global Nanotechnology in Medical Equipment Revenue Market Share by Players (2015-2020)3.1.3 Global Nanotechnology in Medical Equipment Market Share by Company Type (Tier 1, Tier 2 and Tier 3)3.2 Global Nanotechnology in Medical Equipment Market Concentration Ratio3.2.1 Global Nanotechnology in Medical Equipment Market Concentration Ratio (CR5 and HHI)3.2.2 Global Top 10 and Top 5 Companies by Nanotechnology in Medical Equipment Revenue in 20193.3 Nanotechnology in Medical Equipment Key Players Head office and Area Served3.4 Key Players Nanotechnology in Medical Equipment Product Solution and Service3.5 Date of Enter into Nanotechnology in Medical Equipment Market3.6 Mergers & Acquisitions, Expansion Plans

4 Breakdown Data by Type (2015-2026)4.1 Global Nanotechnology in Medical Equipment Historic Market Size by Type (2015-2020)4.2 Global Nanotechnology in Medical Equipment Forecasted Market Size by Type (2021-2026)

5 Nanotechnology in Medical Equipment Breakdown Data by Application (2015-2026)5.1 Global Nanotechnology in Medical Equipment Market Size by Application (2015-2020)5.2 Global Nanotechnology in Medical Equipment Forecasted Market Size by Application (2021-2026)

6 North America6.1 North America Nanotechnology in Medical Equipment Market Size (2015-2020)6.2 Nanotechnology in Medical Equipment Key Players in North America (2019-2020)6.3 North America Nanotechnology in Medical Equipment Market Size by Type (2015-2020)6.4 North America Nanotechnology in Medical Equipment Market Size by Application (2015-2020)

7 Europe7.1 Europe Nanotechnology in Medical Equipment Market Size (2015-2020)7.2 Nanotechnology in Medical Equipment Key Players in Europe (2019-2020)7.3 Europe Nanotechnology in Medical Equipment Market Size by Type (2015-2020)7.4 Europe Nanotechnology in Medical Equipment Market Size by Application (2015-2020)

8 China8.1 China Nanotechnology in Medical Equipment Market Size (2015-2020)8.2 Nanotechnology in Medical Equipment Key Players in China (2019-2020)8.3 China Nanotechnology in Medical Equipment Market Size by Type (2015-2020)8.4 China Nanotechnology in Medical Equipment Market Size by Application (2015-2020)

9 Japan9.1 Japan Nanotechnology in Medical Equipment Market Size (2015-2020)9.2 Nanotechnology in Medical Equipment Key Players in Japan (2019-2020)9.3 Japan Nanotechnology in Medical Equipment Market Size by Type (2015-2020)9.4 Japan Nanotechnology in Medical Equipment Market Size by Application (2015-2020)

10 Southeast Asia10.1 Southeast Asia Nanotechnology in Medical Equipment Market Size (2015-2020)10.2 Nanotechnology in Medical Equipment Key Players in Southeast Asia (2019-2020)10.3 Southeast Asia Nanotechnology in Medical Equipment Market Size by Type (2015-2020)10.4 Southeast Asia Nanotechnology in Medical Equipment Market Size by Application (2015-2020)

11 India11.1 India Nanotechnology in Medical Equipment Market Size (2015-2020)11.2 Nanotechnology in Medical Equipment Key Players in India (2019-2020)11.3 India Nanotechnology in Medical Equipment Market Size by Type (2015-2020)11.4 India Nanotechnology in Medical Equipment Market Size by Application (2015-2020)

12 Central & South America12.1 Central & South America Nanotechnology in Medical Equipment Market Size (2015-2020)12.2 Nanotechnology in Medical Equipment Key Players in Central & South America (2019-2020)12.3 Central & South America Nanotechnology in Medical Equipment Market Size by Type (2015-2020)12.4 Central & South America Nanotechnology in Medical Equipment Market Size by Application (2015-2020)

13Key Players Profiles13.1 Stryker Corporation13.1.1 Stryker Corporation Company Details13.1.2 Stryker Corporation Business Overview and Its Total Revenue13.1.3 Stryker Corporation Nanotechnology in Medical Equipment Introduction13.1.4 Stryker Corporation Revenue in Nanotechnology in Medical Equipment Business (2015-2020))13.1.5 Stryker Corporation Recent Development13.2 3M13.2.1 3M Company Details13.2.2 3M Business Overview and Its Total Revenue13.2.3 3M Nanotechnology in Medical Equipment Introduction13.2.4 3M Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.2.5 3M Recent Development13.3 Abbott13.3.1 Abbott Company Details13.3.2 Abbott Business Overview and Its Total Revenue13.3.3 Abbott Nanotechnology in Medical Equipment Introduction13.3.4 Abbott Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.3.5 Abbott Recent Development13.4 Thermo Fisher Scientific13.4.1 Thermo Fisher Scientific Company Details13.4.2 Thermo Fisher Scientific Business Overview and Its Total Revenue13.4.3 Thermo Fisher Scientific Nanotechnology in Medical Equipment Introduction13.4.4 Thermo Fisher Scientific Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.4.5 Thermo Fisher Scientific Recent Development13.5 PerkinElmer, Inc.13.5.1 PerkinElmer, Inc. Company Details13.5.2 PerkinElmer, Inc. Business Overview and Its Total Revenue13.5.3 PerkinElmer, Inc. Nanotechnology in Medical Equipment Introduction13.5.4 PerkinElmer, Inc. Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.5.5 PerkinElmer, Inc. Recent Development13.6 Starkey Hearing Technologies13.6.1 Starkey Hearing Technologies Company Details13.6.2 Starkey Hearing Technologies Business Overview and Its Total Revenue13.6.3 Starkey Hearing Technologies Nanotechnology in Medical Equipment Introduction13.6.4 Starkey Hearing Technologies Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.6.5 Starkey Hearing Technologies Recent Development13.7 Smith + Nephew13.7.1 Smith + Nephew Company Details13.7.2 Smith + Nephew Business Overview and Its Total Revenue13.7.3 Smith + Nephew Nanotechnology in Medical Equipment Introduction13.7.4 Smith + Nephew Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.7.5 Smith + Nephew Recent Development13.8 Dentsply International13.8.1 Dentsply International Company Details13.8.2 Dentsply International Business Overview and Its Total Revenue13.8.3 Dentsply International Nanotechnology in Medical Equipment Introduction13.8.4 Dentsply International Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.8.5 Dentsply International Recent Development13.9 Mitsui Chemicals, Inc.13.9.1 Mitsui Chemicals, Inc. Company Details13.9.2 Mitsui Chemicals, Inc. Business Overview and Its Total Revenue13.9.3 Mitsui Chemicals, Inc. Nanotechnology in Medical Equipment Introduction13.9.4 Mitsui Chemicals, Inc. Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.9.5 Mitsui Chemicals, Inc. Recent Development13.10 AAP Implantate AG13.10.1 AAP Implantate AG Company Details13.10.2 AAP Implantate AG Business Overview and Its Total Revenue13.10.3 AAP Implantate AG Nanotechnology in Medical Equipment Introduction13.10.4 AAP Implantate AG Revenue in Nanotechnology in Medical Equipment Business (2015-2020)13.10.5 AAP Implantate AG Recent Development

14Analysts Viewpoints/Conclusions

15Appendix15.1 Research Methodology15.1.1 Methodology/Research Approach15.1.2 Data Source15.2 Disclaimer15.3 Author Details

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Potential Impact of COVID-19 on Nanotechnology in Medical Equipment Market | Growth Drivers, Business Strategies and Future Prospects 2026 - Jewish...

Nanotechnology-enabled Battery Market ( COVID 19-UPDATED ) to Witness a Pronounce Growth During 2019-2026 Key players are A123 Systems, Altair…

The Nanotechnology-enabled Battery Market report shows a brilliant presentation of regional growth, competition and provides accurate statistics with price and gross margin and other essential factors to grow in the Nanotechnology-enabled Battery market. The Nanotechnology-enabled Battery market report digs deep into critical aspects of key subjects which help market players to make appropriate changes in their approach and help you craft better strategies. The report is made with a combination of detailed information relying upon the important data researched by our analysts.

Major Key Players in Nanotechnology-enabled Battery Market: A123 Systems, Altair Nanotechnologies, Front Edge Technology, Kokam, TOSHIBA

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By ApplicationAutomotive, Consumer products, Others

By TypeCarbon, Lithium, Others

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Nanotechnology-enabled Battery Market ( COVID 19-UPDATED ) to Witness a Pronounce Growth During 2019-2026 Key players are A123 Systems, Altair...

Can we ‘trap and zap’ the coronavirus? – Futurity: Research News

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Researchers plan to reconfigure trap and zap wastewater-treatment technology to capture and deactivate the virus that causes COVID-19.

Their chemical-free nanotechnology, introduced earlier this year as a way to kill bacterial superbugs and degrade their antibiotic resistance genes in wastewater, would employ graphitic carbon nitride customized at the molecular level to selectively absorb viruses and then disable them by activating nearby catalysts with light.

The team aims to develop a system that is fast, efficient, and reliable under realistic scenarios, says Pedro Alvarez, professor of civil and environmental engineering and a professor of chemistry and of chemical and biomolecular engineering at Rice University.

COVID-19 might be a dress rehearsal for even more lethal infectious diseases that are very difficult to control, says Alvarez, director of the Nanosystems Engineering Research Center for Nanotechnology-Enabled Water Treatment (NEWT).

We need to enhance the capacity and resiliency of multimedia treatment processesespecially air filtration and wastewater disinfectionto protect public health.

SARS-CoV-2 has been found in air ducts, suggesting it could spread through a buildings air conditioning system, and in stool, even from patients who have tested negative for COVID-19, he says.

That suggests it could reach wastewater treatment plants, where it could survive for days.

While the researchers will test their work in the lab on similar but less-virulent strains, they expect their trap-and-zap treatment approach will recognize coronaviruses that cause not only COVID-19 but also MERS and SARS, according to the project abstract.

Support for the work comes from a National Science Foundation (NSF) RAPID grant to develop a novel approach for selective adsorption and photocatalytic disinfection of SARS-CoV-2.

Source: Rice University

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Can we 'trap and zap' the coronavirus? - Futurity: Research News

Nanotechnology shown to slow spread of COVID-19 virus in lung and white blood cells, study shows – cleveland.com

SAN DIEGO, California A promising technology slowed the spread of SARS-CoV-2, the virus that causes COVID-19, in cell cultures, researchers at the University of California San Diego and Boston University found in lab experiments.

The United States led the world in coronavirus cases with 2.7 million confirmed Thursday, according to data maintained by Johns Hopkins University.

Engineers at UC-San Diego coated tiny nanoparticles made of polymer with lung and white blood cell membranes, disguising them as human cells to the virus.

The membranes covering the nanoparticles had the same external receptors and proteins that the virus uses to enter the human lung and white blood cells. The nanoparticles fooled the SARS-CoV-2 virus into thinking they were human cells and the virus bound onto them. Once attached to the nanoparticles, the virus could no longer enter a human cell or reproduce.

These lung cells and white blood cell nanoparticles blocked almost 90 percent of the virus ability to enter human cells, reproduce and create more virus in lab dish experiments, researchers out of UC San Diego and Boston University published last month in Nano Letters.

Nanoparticles were first masked as human cells, like red blood cells, more than a decade ago at UC San Diegos Jacobs School of Engineering. They can also be used to extract oil or toxins from water or an oil spill. They have to be masked to be used in the body because the immune system attacks foreign objects. They have been dubbed nanosponges by researchers because of their ability to soak up pathogens or toxins.

Researchers at UC-San Diego will work next to see how well the COVID-19 nanosponges work in animals, and potentially, in humans.

Its a very promising technology, but I think its still very early to know how effective it will be in humans, said Vijay Krishna, assistant staff at the Cleveland Clinics biomedical engineering department. He has studied nanoparticles but is not an author or contributor to this study.

Usually, it would take between five and 10 years to develop this kind of technology for use in humans, Krishna said. But these are not normal times, and the development time for use in humans could speed up to one or two years.

The way these nanoparticles react in the cells in a lab is very different than how they might respond in living organisms, Krishna said.

Working in cells is very different than working in a living organism, he said. In a lung there is a lot of dynamics of movement, from your breathing, from blood flow and lungs expanding and contracting. These dynamics can change the interactions of nanosponges with the virus and that can actually dictate how effective these nanoparticles are.

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Nanotechnology shown to slow spread of COVID-19 virus in lung and white blood cells, study shows - cleveland.com

Nanotechnology and Nanomaterials Solutions Driving the Fight Against COVID-19 – PRNewswire

DUBLIN, Aug. 11, 2020 /PRNewswire/ -- The "Nanotechnology and Nanomaterials Solutions for COVID-19: Diagnostic Testing, Antiviral and Antimicrobial Coatings and Surfaces, Air-Borne Filtration, Facemasks, PPE, Drug Delivery and Therapeutics" report has been added to ResearchAndMarkets.com's offering.

Nanotechnology and nanomaterials can significantly address the many clinical and public healthcare challenges that have arisen from the coronavirus pandemic. This analysis examines in detail how nanotechnology and nanomaterials can help in the fight against this pandemic disease, and ongoing mitigation strategies. Nano-based products are currently being developed and deployed for the containment, diagnosis, and treatment of Covid-19.

Nanotechnology and nanomaterials promise:

Report contents include:

Key Topics Covered:

1 RESEARCH SCOPE AND METHODOLOGY 1.1 Report scope1.2 Research methodology

2 INTRODUCTION

3 DIAGNOSTIC TESTING3.1 Nanotechnology and nanomaterials solutions 3.2 Market revenues3.3 Companies3.4 Academic research

4 ANTIVIRAL AND ANTIMICROBIAL COATINGS AND SURFACES 4.1 Nanotechnology and nanomaterials solutions4.2 Market revenues4.3 Companies 4.4 Academic research

5 AIR-BORNE VIRUS FILTRATION5.1 Nanotechnology and nanomaterials solutions 5.2 Market revenues5.3 Companies 5.4 Academic research

6 FACEMASKS AND OTHER PPE6.1 Nanotechnology and nanomaterials solutions (Polymer nanofibers, Nanocellulose, Nanosilver, Graphene) 6.2 Market revenues6.3 Companies 6.4 Academic research

7 DRUG DELIVERY AND THERAPEUTICS7.1 Nanotechnology and nanomaterials solutions7.2 Market revenues7.3 Companies7.4 Academic research

8 REFERENCES

Companies Mentioned

For more information about this report visit https://www.researchandmarkets.com/r/cdurs3

About ResearchAndMarkets.comResearchAndMarkets.com is the world's leading source for international market research reports and market data. We provide you with the latest data on international and regional markets, key industries, the top companies, new products and the latest trends.

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Nanotechnology and Nanomaterials Solutions Driving the Fight Against COVID-19 - PRNewswire

Translation of the long-term fundamental studies on viral DNA packaging motors into nanotechnology and nanomedicine – DocWire News

This article was originally published here

Liang C, et al. Sci China Life Sci 2020 Review.

ABSTRACT

Many years of fundamental studies on viral genome packaging motors have led to fruitful applications. The double-stranded DNA (dsDNA) viruses package their genomes into preformed protein shells via nanomotors including several elegant and meticulous coaxial modules. The motor is geared by the hexameric RNA ring. An open washer displayed as hexametric string of phi29 motor ATPase has been reported. The open washer linked into a filament as a queue with left-handed chirality along the dsDNA chain. It was found that a free 5- and 3-dsDNA end is not required for one gp16 dimer and four monomers to assemble into the hexametric washer on dsDNA. The above studies have inspired several applications in nanotechnology and nanomedicine. These applications include: (i) studies on the precision motor channels have led to their application in the single pore sensing; (ii) investigations into the hand-in-hand integration of the hexametric pRNA ring have resulted in the emergence of the new field of RNA nanotechnology; and (iii) the studies on the motor stoichiometry of homologous multi-subunits that subsequently have inspired the discovery of new methods in highly potent drug development. This review focuses on the structure and function of the viral DNA packaging motors and describes how fundamental studies inspired various applications. Given these advantages, more nanotechnological and biomedical applications using bacteriophage motor components are expected.

PMID:32617827 | DOI:10.1007/s11427-020-1752-1

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Translation of the long-term fundamental studies on viral DNA packaging motors into nanotechnology and nanomedicine - DocWire News

7 Amazing Everyday Examples Of Nanotechnology In Action – Forbes

Nanotechnology essentially means controlling matter on a tiny scale, at the atomic and molecular level. This sounds truly sci-fi, but can, in fact, be put to some very ordinary uses in surprisingly everyday products. In this article, well explore common products that make use of nanotechnology but first, lets get a quick overview of the amazing world of nanotechnology...

7 Amazing Everyday Examples Of Nanotechnology In Action

What is nanotechnology?

Nanotechnology is about looking at the world on such a tiny scale that we can not only see the atoms that make up everything around us (including ourselves), but we can manipulate and move those atoms around to create new things. Think of nanotechnology, then, as being a bit like construction only on a tiny scale.

And I do mean tiny. The nanoscale is 1,000 times smaller than the microscopic level and a billion times smaller than the typical world of meters that were used to measuring things in. (Nano literally means one-billionth.) If you took a human hair, for instance, it would measure approximately 100,000 nanometers wide. Thats the sort of scale were dealing with at a nano level.

Thats all very cool, I hear you say, but how does understanding this nanoscopic world impact (if youll excuse the pun) the world at large? For one thing, when we zoom in and look at materials on an atomic level, we sometimes find they behave quite differently and have completely different properties at the atomic level. As a simple example, silk feels incredibly soft and delicate to the touch, but if you look at it at a nano-level, youll see its made up of molecules aligned in cross-links, and this is what makes silk so strong. We can then use knowledge like this to manipulate other materials at a nano level, to create super-strong, state-of-the-art materials like Kevlar.

This is where the technology bit of nanotechnology comes in using our knowledge of materials at a nano-level to create exciting new solutions and products.

Everyday products that use nanotechnology

Nanotechnology may seem like something out of the future, but in fact, many everyday products are already made using nanotechnology. Take these seven common products, for instance:

1. Sunscreen

Nanoparticles have been added to sunscreens for years to make them more effective. Two particular types of nanoparticles commonly added to sunscreen are titanium dioxide and zinc oxide. These tiny particles are not only highly effective at blocking UV radiation, they also feel lighter on the skin, which is why modern sunscreens are nowhere near as thick and gloopy as the sunscreens we were slathered in as kids.

2. Clothing

When used in textiles, nanoparticles of silica can help to create fabrics that repel water and other liquids. Silica can be added to fabrics either by being incorporated into the fabrics weave or sprayed onto the surface of the fabric to create a waterproof or stainproof coating. So if youve ever noticed how liquid forms little beads on waterproof clothing beads that simply roll off the fabric rather than being absorbed thats thanks to nanotechnology.

3. Furniture

In the same way that clothing can be made waterproof and stainproof through nanotechnology, so too can upholstered furniture. Even better, nanotechnology is also helping to make furniture less flammable; by coating the foam used in upholstered furniture with carbon nanofibers, manufacturers can reduce flammability by up to 35 percent.

4. Adhesives

Nanotechnology can also be used to optimize adhesives. Interestingly, most glues lose their stickiness at high temperatures, but a powerful nano-glue not only withstands high temperatures it gets stronger as the surrounding temperature increases.

5. Coatings for car paintwork

We all know bird droppings can wreak havoc on car paintwork. To combat this, a company called Nanorepel has produced a high-performance nanocoating that can be used to protect your cars paintwork from bird poop. The company also makes coatings to protect car upholstery from stains and spillages.

6. Tennis balls

Nanotechnology has found a range of applications in the world of sports equipment, with a couple of great examples coming from one of my favorite sports: tennis. Nanotechnology helps tennis balls keep their bounce for longer, and make tennis racquets stronger.

7. Computers

Without nanotechnology, we wouldn't have many of the electronics we use in everyday life. Intel is undoubtedly a leader in tiny computer processors, and the latest generation of Intels Core processor technology is a 10-nanometer chip. When you think a nanometer is one-billionth of a meter, thats incredibly impressive!

Nanotechnology is just one of 25 technology trends that I believe will transform our society. Read more about these key trends including plenty of real-world examples in my new book, Tech Trends in Practice: The 25 Technologies That Are Driving The 4th Industrial Revolution.

Link:
7 Amazing Everyday Examples Of Nanotechnology In Action - Forbes

Complexity of human tooth enamel revealed at atomic level in NIH-funded study – National Institutes of Health

News Release

Wednesday, July 1, 2020

Unprecedented details of enamel structure may point to new ways to prevent or halt cavities.

Scientists used a combination of advanced microscopy and chemical detection techniques to uncover the structural makeup of human tooth enamel at unprecedented atomic resolution, revealing lattice patterns and unexpected irregularities. The findings could lead to a better understanding of how tooth decay develops and might be prevented. The research was supported in part by the National Institute of Dental and Craniofacial Research (NIDCR) at the National Institutes of Health. The findings appear in Nature.

This work provides much more detailed information about the atomic makeup of enamel than we previously knew, said Jason Wan, Ph.D., a program officer at NIDCR. These findings can broaden our thinking and approach to strengthening teeth against mechanical forces, as well as repairing damage due to erosion and decay.

Your teeth are remarkably resilient, despite enduring the stress and strain of biting, chewing, and eating for a lifetime. Enamel the hardest substance in the human body is largely responsible for this endurance. Its high mineral content gives it strength. Enamel forms the outer covering of teeth and helps prevent tooth decay, or caries.

Tooth decay is one of the most common chronic diseases, affecting up to 90% of children and the vast majority of adults worldwide, according to the World Health Organization. Left untreated, tooth decay can lead to painful abscesses, bone infection, and bone loss.

Tooth decay starts when excess acid in the mouth erodes the enamel covering. Scientists have long sought a more complete picture of enamels chemical and mechanical properties at the atomic level to better understandand potentially prevent or reverseenamel loss.

To survey enamel at the tiniest scales, researchers use microscopy methods such as scanning transmission electron microscopy (STEM), which directs a beam of electrons through a material to map its atomic makeup.

STEM studies have shown that at the nanoscale, enamel comprises tightly bunched oblong crystals that are about 1,000 times smaller in width than a human hair. These tiny crystallites are made mostly of a calcium- and phosphate-based mineral called hydroxylapatite. STEM studies coupled with chemical detection techniques had hinted at the presence of much smaller amounts of other chemical elements, but enamels vulnerability to damage from high-energy electron beams prevented a more thorough analysis at the necessary level of resolution.

To define these minor elements, a team of scientists at Northwestern University, Evanston, Illinois, used an imaging tool called atom probe tomography. By successively removing layers of atoms from a sample, the technique provides a more refined, atom-by-atom view of a substance. The Northwestern group was among the first to use atom probe tomography to probe biological materials, including components of teeth.

Earlier studies revealed the bulk composition of enamel, which is like knowing the overall makeup of a city in terms of its population, said senior author Derk Joester, Ph.D., a professor of materials science and engineering at Northwestern. But it doesnt tell you how things operate at the local scale in a city block or a single house. Atom probe tomography gave us that more detailed view.

The scientists used atom probe tomography and advanced STEM techniques in a complementary fashion to overcome prior technical limitations. The Northwestern researchers worked with imaging experts led by Lena Kourkoutis, Ph.D., an associate professor of applied and engineering physics and director of electron microscopy at Cornell Universitys national materials science user facility, PARADIM, in Ithaca, New York. At Cornell, the scientists coupled an ultra-fast chemical detector with STEM at very low temperatures to minimize enamel damage and gather more detailed chemical data. The complementary approaches enabled the team to piece together information at multiple levels of resolution to get a more complete view of the chemical and structural features of enamel crystallites.

The results showed that the crystallites were made of a continuous uniform lattice of hydroxylapatite atoms. However, the lattice structure appeared to be sprinkled with dark distortions, especially at the innermost core of the crystallites.

A closer look at the core revealed that these defects were caused by the presence of minor elements that previous studies had hinted at. One such element was magnesium, which was highly concentrated in two distinct layers in the core. The central region was also rich in sodium, fluorine, and carbonate. Flanking the core was a shell with much lower concentrations of these elements.

We assumed that human crystallites would be similar in composition to rodent enamel, which is widely used by researchers to understand human enamel, said co-first author Paul Smeets, Ph.D., a research associate in the Northwestern Atomic and Nanoscale Characterization Experimental Center. But that was not the case human enamel is much more chemically complex than we thought.

The scientists suspected that the irregularities introduced by magnesium layers give rise to areas of strain in the crystallite. Computer modeling supported their hunch, predicting higher stresses in the core than in the shell.

Stress may sound bad, but in material science it can be useful, and we think it may make enamel stronger overall, said co-first author Karen DeRocher, a graduate student in Joesters lab. On the other hand, those stresses are predicted to make the core more soluble, which might lead to erosion of enamel.

Indeed, when the researchers exposed crystallites to acidsimilar to what happens in the mouththe core showed more erosion than the shell. Further modeling and experiments will be necessary to confirm these results, as well as to explore the idea that stress introduced by chemical impurities may fortify enamel and make it more resistant to fracture. The group also plans to continue using these approaches to learn more about how acid affects enamel.

This new information will enable model-based simulation of enamel degradation that wasnt possible before, helping us better understand how caries develops, said DeRocher.

The findings could lead to new approaches to toughen enamel and prevent or reverse cavity formation.

This research was supported by NIDCR grants DE025303 and DE025702. Support also came from the National Science Foundation, the University of Virginia, 3M, the Natural Sciences and Engineering Research Council of Canada, Northwestern University, the Deutsche Forschungsgemeinschaft, Office of Naval Research, the International Institute for Nanotechnology, the Keck Foundation, the State of Illinois, the NASA Ames Research Center, Cornell University, the Weill Institute, the Kavli Institute, the National Research Council of Canada, the Canadian Institutes of Health Research, the Province of Saskatchewan, Western Economic Diversification Canada, and the University of Saskatchewan.

This press release describes a basic research finding. Basic research increases our understanding of human behavior and biology, which is foundational to advancing new and better ways to prevent, diagnose, and treat disease. Science is an unpredictable and incremental process each research advance builds on past discoveries, often in unexpected ways. Most clinical advances would not be possible without the knowledge of fundamental basic research.

NIDCRis the nations leading funder of research on oral, dental, and craniofacial health. To learn more about NIDCR, visitwww.nidcr.nih.gov.

About the National Institutes of Health (NIH):NIH, the nation's medical research agency, includes 27 Institutes and Centers and is a component of the U.S. Department of Health and Human Services. NIH is the primary federal agency conducting and supporting basic, clinical, and translational medical research, and is investigating the causes, treatments, and cures for both common and rare diseases. For more information about NIH and its programs, visit http://www.nih.gov.

NIHTurning Discovery Into Health

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Complexity of human tooth enamel revealed at atomic level in NIH-funded study - National Institutes of Health

Coating Machines Market Viewpoint, Trends and Predictions 2018 2028: Persistence Market Research – Cole of Duty

Coating is layer applied on the surface of an object, the purpose of the coating is to make the object durable, decorative, functional or to protect the object which are used for various types of coatings on the various types of objects ranging from metal to non-metal types. Coating machines are used for film coating, formulation coating, plastic coating, nano-coatings and UV coatings and for various other types of coating. Coating Machines are extensively used in industries such as pharmaceuticals, paints, textile, automotive etc. Apart from the existing industrial sectors, coating machines have also found in new areas of application such as nanotechnology.

The configuration of coating machines differs from one industry to another based upon the set of processes involved. By operation, the coating machines can be automated or manual. Coating machines are available in various size, shape, capacity, power and in other specifications. Various coating machine manufacturers follow AISI 316 and AISI 304 sections.

One of the key characteristic of coating machine is that the equipment are designed in such a way that the risk of accident is reduced on the operators side. Besides, coating machines are easy to repair and maintain. At present, the modern coating machines are now operated with the help of microprocessor programmable control system which makes it fully automated. Coating machines have been designed in the way to reduce the various emissions which might cause pollution. In terms of shelf life, the coating machines are said to have a long operating span.

Coating Machines Market: Dynamics

With the varied scope in end use industries including used in Paints, Plastics, Textiles, Pharmaceuticals, Automotive, Electronics, Glass, Ceramics, Paper and Printing, the Coatings Machines Market is expected to witness a fair share of growth during the forecast period. The coating machines market is also expected to witness significant growth from the pharmaceutical industry in particular. With the continuous development in the field of nanotechnology in recent times, there will be increase in the use of coating machines in the said field thus leveraging its end use.

Also, the sustained need for coating in the paint, plastic and textile industries is increasing and is projected to augment the demand for coating machines. The growing construction industry and infrastructural development has led to the substantially increasing demand for the materials like glass, ceramics and paints. As coating provides durability and safety to these materials along with making it decorative which gives it an additional value, therefore importance of coating has also increased for the same thus creating additional growth opportunities for the of coating machines market.

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The demand of conformal coatings in electronic industry is also considered as a major industrial sector driving the coating machines market which is expected to offer a significant rate of growth. In future opportunities, coating machines are expected to find a pivotal role applications related to the food and packaging industry. As coating on the packages make the product long lasting therefore the coatings have become the necessity in packaging industry which makes coating machine an important element of packaging industry.

Self-cleaning coatings are quite trending in the automotive, construction, textile and glass building materials which makes coating machines used for self-coatings trending in the market. However, the lack of skilled personnel and limited installation can prove as a setback for the growth of coating machines market in regions where manufacturing base is sparse. Long life and low maintenance of coating machines can also act as restraining factor for the sales of new units of the coating machines.

Coating Machines Market: Segmentation

Coating machines market can be segmented on the basis its operation:

Coating machines market can be segmented on the basis of its application in various industries such as:

Coating machine market can be segmented on the basis of mechanical speed of the machine:

Coating Machines Market: Regional Outlook

As there is growth in construction industries in the regions of Latin America, China, India, Southeast Asia and Pacific there is increase in the use coatings in construction industry which make these regions potential market for Coating machines. Regions like North America, Europe and Japan are focused on Infrastructural development which makes them a strong market for coating machines due to the need of coatings in infrastructure.

Looking at the growth of pharmaceutical and electronic industries in the regions Latin America, Europe, China, India, Middle East and Africa, Southeast Asia and Pacific there will be growth in the use of Coating machines in these regions. Considering the impact of coatings on the major industries across world the growth coating machines is expected to be global.

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Coating Machines Market: Key Participants

Some of the global participants in the Coating machines market are:

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Coating Machines Market Viewpoint, Trends and Predictions 2018 2028: Persistence Market Research - Cole of Duty

Sixth Wave Granted Additional Patent for the Extraction and Purification of Metals – Marketscreener.com

Halifax, Nova ScotiaSixth Wave Granted Additional Patent for the Extraction and Purification of Metals--(Newsfile Corp. - June 24, 2020) - Sixth Wave Innovations Inc. (CSE: SIXW) (OTCQB: ATURF) (FSE: AHUH) ("Sixth Wave" or the "Company") is pleased to announce that the Patent Office of the People's Republic of China has granted the Company a patent for its unique method of metal extraction and purification using molecularly imprinted polymers (the "Patent").

The Patent expands the Company's existing patent portfolio. Sixth Wave's IXOS technology is one embodiment of the patented IP and selectively binds to target metal ions such as dicyanoaurate, which is the compound produced in the cyanide leaching process of gold extraction. IXOS has been proven to result in more efficient metal extraction in multiple pilot programs with major mining companies.

"The patent process is typically slow and fraught with negotiation with issuing authorities. While there has been a preponderance of work in the field of molecular science, I am proud of our team and their ability to create practical, and commercially viable new intellectual property using these techniques to solve challenging real-world problems," said Dr. Jon Gluckman, President and CEO of Sixth Wave.

Sixth Wave is pursuing multiple opportunities to commercialize its IXOS metals extraction technology. Sixth Wave's IXOS technology has demonstrated the ability to deliver an efficient, scalable, environmentally friendly, and lower cost alternative to activated carbon in the gold processing cycle.

About Sixth Wave

Sixth Wave is a development stage nanotechnology company with patented technologies that focus on extraction and detection of target substances at the molecular level using highly specialized molecularly imprinted polymers. The Company is in the process of commercializing its Affinity cannabinoid purification system, as well as, IXOS, a line of extraction polymers for the gold mining industry.

Sixth Wave can design, develop and commercialize molecular imprinted polymer solutions across a broad spectrum of industries. The company is focused on nanotechnology architectures that are highly relevant for detection and separation of viruses, biogenic amines and other pathogens, for which the Company has products at various stages of development.

For more information about Sixth Wave, please visit: http://www.sixthwave.com.

ON BEHALF OF THE BOARD OF DIRECTORS

"Jon Gluckman"

Jonathan Gluckman, Ph.D., President & CEO

For information, please contact the Company:

Phone: (801) 582-0559E-mail:info@sixthwave.com

Cautionary Notes

This press release includes certain statements that may be deemed "forward-looking statements" including statements regarding the planned features of the MIPs technology. All statements in this release, other than statements of historical facts, that address future events or developments that the Company expects, are forward-looking statements. Although the Company believes the expectations expressed in such forward-looking statements are based on reasonable assumptions, such statements are not guarantees of future performance, and actual events or developments may differ materially from those in forward-looking statements. Such forward-looking statements necessarily involve known and unknown risks and uncertainties, which may cause the Company's actual performance and financial results in future periods to differ materially from any projections of future performance or results expressed or implied by such forward-looking statements. In particular, successful development and commercialization of the MIPs technology are subject the risk that the MIPs technology may not prove to be effective or economic at commercial levels of production.

To view the source version of this press release, please visit https://www.newsfilecorp.com/release/58499

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Sixth Wave Granted Additional Patent for the Extraction and Purification of Metals - Marketscreener.com

C-Bond Secure Prevents Break-in and Looting Attempt at Prominent Houston Jewelry Store – Stockhouse

HOUSTON, June 08, 2020 (GLOBE NEWSWIRE) -- C-Bond Systems, Inc. (the Company” or C-Bond”) (OTC: CBNT), a nanotechnology solutions company, announced today that C-Bond Secure successfully prevented a break-in and looting attempt at Hal Martin’s Watch and Jewelry Co., a prominent Houston jewelry store.

C-Bond Secure is a glass strengthening primer for the installation of window film. C-Bond’s nanotechnology chemically bonds to and repairs the defects randomly distributed across the glass surface, thereby increasing glass strength, flexibility and impact resistance. The product is easy to install and is compatible with any film manufacturers’ products in all film market segments including solar, safety, decorative, automotive and marine.

Hal Martin, Owner of Hal Martin’s Watch and Jewelry Co., said I was the first jewelry store to use the C-bond technology on all of our glass windows. This nanotechnology, which changed the molecular structure of the glass, is amazing.

One evening after midnight, three individuals tried for one hour to break a single window at my store with a sledgehammer. While the glass was cracked, they were not able to gain entry. The C-Bond technology, along with the 34mm film they installed, did the job. I must say it certainly makes it easier to sleep at night knowing that thieves, protestors and sledgehammers are not going to gain entry. We now use C-Bond Secure on our showcases to protect from smash and grabs,” concluded Martin.

These tumultuous times have demonstrated loud and clear the importance of securing a storefront or other point of entry to the business community,” said Scott R. Silverman, Chairman and Chief Executive Officer of C-Bond Systems. C-Bond Secure provides a cost-effective, proven solution for businesses to protect themselves and the people inside from break-ins, robberies, and looting.”

About C-Bond C-Bond Systems, Inc. (OTC: CBNT) is a Houston-based advanced nanotechnology company and marketer of the patented C-Bond technology, developed in conjunction with Rice University and independently proven to significantly strengthen glass in key automotive and structural applications. The Company’s Transportation Solutions Group sells C-Bond NanoShield®, a liquid solution applied directly to automotive windshields, sold through distributors. The Company’s Safety Solutions Group sells ballistic-resistant glass solutions and FN NANO Coating directly to private enterprises, schools, hospitals and government agencies. For more information, please visit our website: http://www.cbondsystems.com, Facebook: https://www.facebook.com/cbondsys/ and Twitter: https://twitter.com/CBond_Systems.

Forward-Looking Statements Statements in this press release about our future expectations constitute "forward-looking statements" within the meaning of Section 27A of the Securities Act of 1933, Section 21E of the Securities Exchange Act of 1934, and as that term is defined in the Private Litigation Reform Act of 1995. Such forward-looking statements involve risks and uncertainties and are subject to change at any time, and our actual results could differ materially from expected results. These risks and uncertainties include, without limitation, C-Bond’s ability to raise capital; the Company’s ability to successfully commercialize its products; the effects of the COVID-19 global pandemic on the Company’s ability to operate; as well as other risks. Additional information about these and other factors may be described in the Company’s filings with the Securities and Exchange Commission (SEC”) including its Form 10-K filed on March 25, 2020, its Forms 10-Q filed on May 15, 2020, November 14, 2019, and August 12, 2019, and in future filings with the SEC. The Company undertakes no obligation to update or release any revisions to these forward-looking statements to reflect events or circumstances after the date of this statement or to reflect the occurrence of unanticipated events, except as required by law.

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C-Bond Secure Prevents Break-in and Looting Attempt at Prominent Houston Jewelry Store - Stockhouse

Iran in bid to set up nanoscience hub in Nairobi – University World News

KENYA

The facility to be put up at the University of Nairobi is to concentrate on the research of all aspects of computational nanoscience, and to help promote the fields of nanoscience and nanotechnology across the country and beyond.

This has emerged following talks between the university and the Iran Embassy in Nairobi which will bring in Iranian universities to actualise the ambitions.

Western and Asian powers have historically dominated the field of nanotechnology, but this development arguably adds impetus to Kenyas bid to transform itself into an innovation and research hub in Africa.

Nanotechnology refers broadly to a field of applied science and technology whose unifying theme is the control of matter at the molecular level in scales smaller than 1 micrometre, normally 1 to 100 nanometres, and the fabrication of devices within that size range. The technology finds application in a variety of sectors including medicine, transport, agriculture, electronics and energy.

Speaking during a virtual courtesy call to the University of Nairobi Vice-Chancellor Professor Stephen Kiama last week, the Iran Ambassador Jafar Barmaki noted that the institutions of higher learning from the two countries could collaborate on nanotechnology and oil exploration.

A big opportunity

This is a big opportunity. Iran has over 40 years experience in the two sectors and is willing to share with Kenya. We could work on staff and student exchange programmes, said Barmaki.

Nanotechnology has been billed as the science of the future, with micro-particles already powering innovations across industries.

Experts reckon that nanotechnology has the potential to increase the efficiency of energy consumption, foster food security, solve major health problems and increase manufacturing production at reduced costs.

We are keen on tapping such new innovations to drive the countrys economic agenda, said Kiama.

Last year, Iran announced that it would partner with Jomo Kenyatta University of Agriculture and Technology to formulate postgraduate programmes in nanotechnology, equip nanotechnology laboratories and bring in professors in the field of nanotechnology in a bid to build capacity in the field and raise awareness about nanoscience.

According to the Web of Science, Iran ranks fourth in nanotechnology in the world after China, the United States of America and India.

Research and innovation centres

Kenya has been pushing universities to morph into research and innovation centres, providing a platform for top-notch researchers to use their skills to develop solutions to African challenges.

The country hopes to use science, technology and research to address some of the problems threatening economic growth such as food insecurity, poaching, congestion in major towns and energy shortages.

A study of Kenyas situation however reveals minimal understanding of what nanoscience and nanotechnology are, and what their potential benefits are.

Given the current and anticipated impacts of nanotechnology in work efficiency, ways of life and the environment, Kenyas efforts should be focused on how nanotechnology can improve efficiency. This requires synergistic relationships amongst all the stakeholders right from the beginning of the research and development processes, said Professor Bernard Aduda in a recent research paper titled Status of Nanoscience and Nanotechnology in Kenya.

The teaching of and research in these areas and the accompanying infrastructure are weak and disjointed. Moreover, there are almost non-existent or weak specific regulatory tools and policies governing this important but emerging technology and discipline.

Gaps presently exist in our scientific knowledge, and coupled with inadvertent outcomes witnessed in other technological advances there are reasons enough for nanotechnology industries and relevant government agencies to invest in understanding the possible risks and neutralising them prior to putting the products into the market, the University of Nairobi academic argued.

Once set up, the centre would become a hub of nanotechnology for masters students from not only the University of Nairobi but from other universities in Africa. Lecturers and technocrats will be sought from Iranian universities and from Iranian nanoscience research centres.

Barmaki said every year Iran gives 50 fellowships to African students to study masters and doctoral programmes in Iran.

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Iran in bid to set up nanoscience hub in Nairobi - University World News

Healthcare Nanotechnology Market 2020 | Growth Drivers, Challenges, Trends, Market Dynamics and Forecast to 2026 – Cole of Duty

Endo International

The scope of the Report:

The report analyzes the key opportunities, CAGR, and Y-o-Y growth rates to allow readers to understand all the qualitative and quantitative aspects of the Healthcare Nanotechnology market. A competition analysis is imperative in the Healthcare Nanotechnology market and the competition landscape serves this objective. A wide company overview, financials, recent developments, and long and short-term strategies adopted are par for the course. Various parameters have been taken into account while estimating market size. The revenue generated by the leading industry participants in the sales of Healthcare Nanotechnology across the world has been calculated through primary and secondary research. The Healthcare Nanotechnology Market analysis is provided for the international markets including development trends, competitive landscape analysis, and key regions development status.

By Regions:

* North America (The US, Canada, and Mexico)

* Europe (Germany, France, the UK, and Rest of the World)

* Asia Pacific (China, Japan, India, and Rest of Asia Pacific)

* Latin America (Brazil and Rest of Latin America.)

* Middle East & Africa (Saudi Arabia, the UAE, , South Africa, and Rest of Middle East & Africa)

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Highlights of the Healthcare Nanotechnology market study:

Speculations for sales:

The report contains historical revenue and volume that backing information about the market capacity, and it helps to evaluate conjecture numbers for key areas in the Healthcare Nanotechnology market. Additionally, it includes a share of every segment of the Healthcare Nanotechnology market, giving methodical information about types and applications of the market.

Key point summary of the Healthcare Nanotechnology market report:

This report gives a forward-looking prospect of various factors driving or restraining market growth.

It presents an in-depth analysis of changing competition dynamics and puts you ahead of competitors.

It gives a six-year forecast evaluated on the basis of how the market is predicted to grow.

It assists in making informed business decisions by creating a pin-point analysis of market segments and by having complete insights of the Healthcare Nanotechnology market.

This report helps users in comprehending the key product segments and their future.

Strategic Points Covered in TOC:

Chapter 1: Introduction, market driving force product scope, market risk, market overview, and market opportunities of the global Healthcare Nanotechnology market

Chapter 2: Evaluating the leading manufacturers of the global Healthcare Nanotechnology market which consists of its revenue, sales, and price of the products

Chapter 3: Displaying the competitive nature among key manufacturers, with market share, revenue, and sales

Chapter 4: Presenting global Healthcare Nanotechnology market by regions, market share and with revenue and sales for the projected period

Chapter 5, 6, 7, 8 and 9: To evaluate the market by segments, by countries and by manufacturers with revenue share and sales by key countries in these various regions

Finally, the report global Healthcare Nanotechnology market describes Healthcare Nanotechnology industry expansion game plan, the Healthcare Nanotechnology industry knowledge supply, appendix, analysis findings and the conclusion. It includes a through explanation of the cutting-edging technologies and investments being made to upgrade the existing ones.

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Market Research Intellect also provides customization options to tailor the reports as per client requirements. This report can be personalized to cater to your research needs. Feel free to get in touch with our sales team, who will ensure that you get a report as per your needs.

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Global Nanotechnology in Cancer Treatment Market 2020 Innovative Trends and Insights Research upto 2025 – Jewish Life News

Recently added to MarketandResearch.biz, a new market research study Global Nanotechnology in Cancer Treatment Market Growth (Status and Outlook) 2020-2025 is one of the best ways that answers business challenges more quickly and also saves a lot of time. The report presents a detailed examination of the market covering segments and sub-sections of the market, product types, advancements, applications, industry verticals, areas that are expected to command the anticipated forecast period from 2020 to 2025. The concerned market covers a variety of market factors such as drivers, opportunities and restraints.

Lets Know Why The Report Is Worth Considering:

The report analyzes top regions of the world and countries with their regional development status, volume, size, market value, and price data. The research report explores various parameters that are expected to affect the current and future dynamics of the global Nanotechnology in Cancer Treatment market. Its a sure shot solution to business challenges and problems. Important industry trends, market size, market share estimates are discussed in the report. Historical revenue and deals volume is displayed and supports information is composed with best down and base up ways in this report. It explains the current as well as future global Nanotechnology in Cancer Treatment market scenarios extending up to the period until the forecast period limit 2025.

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Companies Profiled:

The research report on the global Nanotechnology in Cancer Treatment market gives a detailed analysis of top players and their key growth strategies. The report provides company shares and distribution shares data for the market category and global corporate-level profiles, production, price, cost, revenue, product picture and specification, capacity, and contact information of the key market participants. The valuable estimations about the profit projections, market size, sales capacity, and numerous other crucial parameters are covered in the report.

This market research report on global Nanotechnology in Cancer Treatment market analyzes the growth prospects for the key vendors operating in this market space including: Abbott Laboratories, Celgene Corporation, Combimatrix Corporation, Sigma-Tau Pharmaceuticals Inc., Johnson & Johnson, GE Healthcare, Nanosphere Inc., Mallinckrodt Plc, Pfizer, Inc., Merck & Company Inc.

Split by product type, with production, revenue, price, market share and growth rate of each type, can be divided into: Nanoparticles, Nanorods, Nanofibers, Graphene, Metal-Organic Frameworks, Nanobiosensors, Nanofluidic Devices, Nanotools

Split by application, this report focuses on consumption, market share, and growth rate in each application and can be divided into: Cancer Detection, Imaging, Drug Delivery, Radiotherapy, Immunotherapy, Phototherapy

Regionally, this report focuses on several key regions: Americas (United States, Canada, Mexico, Brazil), APAC (China, Japan, Korea, Southeast Asia, India, Australia), Europe (Germany, France, UK, Italy, Russia), Middle East & Africa (Egypt, South Africa, Israel, Turkey, GCC Countries)

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Global Natural Alginate Wound Dressings Market 2020 by Key Players, Segmentation, Industry Growth, Opportunities and Forecast by 2025

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Global Nanotechnology in Cancer Treatment Market 2020 Innovative Trends and Insights Research upto 2025 - Jewish Life News

Covid-19: Responding To The Business Impacts of Solid State Battery: Market Shares, Strategies, and Forecasts, Worldwide, Nanotechnology, 2020 to 2026…

The 2020 study has 135 pages, 56 tables and figures.

Batteries are changing in response to the implementation of wind and solar energy systems. Solid state batteries represent the next generation of power storage for vehicles. Nanotechnology permits units to be miniaturized, standalone, and portable. Solid-state batteries have advantages in power and density: low-power draw and high-energy density. They have limitations in that there is difficulty getting high currents across solidsolid interfaces.

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Power delivery is different in solid state batteries, there is more power per given weight. The very small and very thin size of solid state battery electrodes help to reduce the physical size of the sensor or device using the battery. Units can stay in the field longer. Solid state batteries can store harvested energy.

When combined with energy harvesting solid state batteries can make a device stay in the field almost indefinitely, last longer, power sensors better.

Temperature is a factor with batteries. The solid-state batteries work in a very broad range of temperatures, making them able to be used for ruggedized applications. Solid state batteries are ecofriendly. Compared with traditional batteries, solid state thin film batteries are less toxic to the environment.

Solid state battery market driving forces include response to IoT, creating business inflection by delivering technology that supports entirely new capabilities is a market benefit. Sensor networks are creating demand for solid state devices. Vendors doubled revenue and almost tripled production volume from first quarter. Multiple customers are moving into production with innovative products after successful trials.

A solid state battery electrolyte is a solid, not porous liquid. The solid is denser than liquid, contributing to the higher energy density. Charging is complex. In an automotive application, recharge cycles go up, rendering a next generation battery. The cycles increase by the inverse of the depth of discharge. Long shelf life is a benefit of being a solid state battery. The fact that the battery housing does not need to deal with gases and vapors as a part of the charging/discharging process is another advantage.

Nanostructured or nano-enabled batteries are a new generation of lithium-ion batteries and battery systems to serve applications and markets. Nano-enabled batteries employ technology at the nano-scale, a scale of minuscule particles that measure less than 100 nanometers, or 10010-9 meters.

Lithium ion battery markets reach $1 trillion in 2026 in response to the adoption of solar and wind energy generation and the rapid adoption of electric vehicles that replace the gasoline powered vehicles. Global warming is forcing a shift from fuels that are burned to renewable energy generation. Solid state batteries represent the next generation of lithium ion batteries and will account for powering electric cars.

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Covid-19: Responding To The Business Impacts of Solid State Battery: Market Shares, Strategies, and Forecasts, Worldwide, Nanotechnology, 2020 to 2026...

Four Penn faculty elected to the American Academy of Arts and Sciences – Penn: Office of University Communications

Four faculty members have been elected members of the American Academy of Arts and Sciences. Guthrie Ramsey, Kathleen Stebe, Eve M. Troutt Powell, and Barbie Zelizer are among 276 honorees for 2020, recognized for their excellence and accomplishments.

Ramsey is the Edmund J. and Louise W. Kahn Term Professor of Music in the School of Arts & Sciences. A musicologist, pianist, and composer, he is a widely published author of books on African American music and musicians. He is currently completing two new books, a collection of mid-career essays, Who Hears Here?, and a monograph history of African American music from the slavery era to the present. As the leader of the band Dr. Guy's MusiQology, he has released three CDs and performed at a number of venues. He also produced a documentary film, Amazing: The Tests and Triumph of Bud Powell,and co-curated an exhibition at the Smithsonians National Museum of American History and Culture about how the Apollo Theater shaped American entertainment. Ramsey is the founder and editor of the blog Musiqology.com, which discusses musical issues of the day.

Stebe is the Richer & Elizabeth Goodwin Professor in the departments of Chemical and Biomolecular Engineering and Mechanical Engineering and Applied Mechanics in the School of Engineering and Applied Science. Her primary research interests are in non-equilibrium interfaces, with applications ranging from microfluidics to nanotechnology. Her group has studied how surface tension and capillary forces at these interfaces can be harnessed to steer the movement of nanoscale particles and objects into well-defined structures. This type of directed assembly is means of manufacturing filters that resist the development of biofilms, and a way for microscopic robots, driven by magnetic fields, to pick and place objects with even finer-grained control.

Troutt Powell is the Christopher H. Browne Distinguished Professor of History and Africana Studies. She teaches the history of the modern Middle East and the history of slavery in the Nile Valley and the Ottoman Empire. She has received fellowships from the American Research Center in Egypt and the Social Science Research Council and has been a fellow at the Institute for Advanced Study in Princeton and at the Radcliffe Institute for Advanced Study. In 2003 she was named a MacArthur Foundation Fellow. Her most recent book is Tell This in My Memory: Stories of Enslavement in Egypt, Sudan and the Late Ottoman Empire. She is now working on a book about the visual culture of slavery in the Middle East which will explore the painting and photography about African and Circassian slavery in the late 19th and early 20th centuries.

Zelizer is the Raymond Williams Professor of Communication in the Annenberg School for Communication, where she is also associate dean for research and director of the Center for Media at Risk. A former journalist, Zelizer is known for her work on journalism, culture, memory, and images, particularly in times of crisis. Her research explores the medias role in shaping the collective memory of events such as John F. Kennedys assassination and the Holocaust, as well as analyzing the conceptual and disciplinary boundaries of the study of the media. Her recent work has sought to provide a vision of why journalism matters and how it must adapt to survive not only structural challenges ushered in by digital technologies but the creeping rise of authoritarianism around the globe. She is a past president and fellow of the International Communication Association and has received fellowships from the Guggenheim Foundation, Center for Advanced Study in the Behavioral and Social Sciences, and American Council of Learned Societies, among many others.

Founded in 1780, the American Academy of Arts and Sciences honors exceptional scholars, leaders, artists, and innovators and engages them in sharing knowledge and addressing challenges facing the world. The full listing of the 240th class of artists, scholars, scientists, and leaders in the public, non-profit, and private sectors can be found at the American Academy of Arts and Sciences website.

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Four Penn faculty elected to the American Academy of Arts and Sciences - Penn: Office of University Communications

Nanotechnology in Medical Market Driven by Growing Demand in Healthcare for Forecast to 2027: Jude Medical Inc. (US), Starkey Hearing Technologies…

Nanotechnology in Medical Market Report provides an in-depth analysis of the overall market, The ripple effect of Coronavirus-Covid19 on the market needs to become part of strategy discussions to emerge strong. The report focuses on major key players, production details, their application, countries and also analyses the global and key regions market potential and advantage, opportunity, and challenge, restraints, and risks.

Key Players of the Nanotechnology in Medical Market:

In addition to the key players of the Nanotechnology in Medical, the report also has a combination with the newer tendencies that tend of managing to penetrate the production of the product. The report also classifies the several contributions to the market that helps in the growth of the market.

The top players covered in Nanotechnology in Medical Market are: Jude Medical Inc. (U.S.), Starkey Hearing Technologies (U.S.), PerkinElmer Inc. (U.S.), Stryker Corporation (U.S.), Affymetrix Inc. (U.S.)

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This Report Sample Includes: Brief Introduction to the Research Report, Table of Contents (Scope Covered as a Part of the Study), Top Players in the Market, Research Framework (Presentation), Research Methodology Adopted by Worldwide Market Reports

Points Covered of this Nanotechnology in Medical Market report are:

Market Drivers and the Risks Associated with the Nanotechnology in Medical Market:

The international Nanotechnology in Medical market has been characterized by several primary factors, with each factor tends of playing a crucial role in the boom of the market. The growth in the products has doubled with the smoother availability of the customer base that has been helping the company of flourishing globally. On the other hand, the presence of a dynamic supply chain has helped the company to grow exponentially. Therefore, regarding the increase in the opportunities of the market Nanotechnology in Medical faces severe complaints from all the aspects.

Major Geographical Regions and Market of the Nanotechnology in Medical:

The analysing and forecast of the global market of Nanotechnology in Medical have no longer been, specifically, analysed that are not on a global foundation but additionally on a neighborhood foundation. When a better look taken at the areas, the market has concentrated, and the file interior the important makes a strong point of Europe, Middle East & Africa, Asia Pacific, Latin America, and North America. These areas have studied regarding the hooked-up traits and the diverse possibilities in addition to the outlook that allows inside the benefitting of the market ultimately.

Research Methodology:

The report has been prepared after thorough market research being conducted. It has been prepared as per the Porters Five Force Model. In terms of timeline, the market takes the period between 2020-2027 into account for assessment. Apart from this, a comprehensive SWOT analysis has been provided for swift business decision making.

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Global Nanotechnology in Medical Market Report includes Detailed TOC points:

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Nanotechnology in Medical Market Driven by Growing Demand in Healthcare for Forecast to 2027: Jude Medical Inc. (US), Starkey Hearing Technologies...

St. Kitts-Nevis first in the Caribbean to receive nontoxic advanced nanotechnology coating – ZIZOnline

Basseterre, St. Kitts, April 22, 2020 (SKNIS): The Federation of St. Kitts and Nevis is the first country in the Caribbean to receive a nanotechnology coating that can last up to 90 days on surfaces, said Dr. Theodore Hanley, a son of the soil and U.S. board-certified anesthesiologist, at the April 21 edition of the National Emergency Operations Center (NEOC) COVID-19 Daily Briefing.

Through our partners, we have secured a non-toxic advanced nanotechnology coating that can last on surfaces for up to 90 days. The technology creates a mechanical non-chemical barrier that no micro bacteria or virus can live on. I am proud to announce that the Federation of St. Kitts and Nevis is the first country in the Caribbean to receive this technology which arrived recently, said Dr. Hanley.

The National Emergency Management Agency (NEMA) will also be presented with the said technology.

NEMA has expressed interest in this new technology and we will be providing this so that this office can be clean and free of microbes as you practice and perform your so needed help to this country, he said.

Dr. Hanley said that this technology is widely used by large public and private U.S. and International organizations.

Important to note, Dr. Hanley said that their organization, Waters Anchor Health and Wellness, located in Frigate Bay, has been working closely with medical practitioners in St. Kitts and Nevis and has answered the call to source personal protective equipment (PPE).

Our organization has worked with local physicians and private businesses in need of PPE. We put together a combined order and utilized our global relations to source the requested items. We expect that that order will be on the island in the next couple of weeks, he said.

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St. Kitts-Nevis first in the Caribbean to receive nontoxic advanced nanotechnology coating - ZIZOnline