Classical thermodynamics has only a handful of laws, of which the most fundamental are the first and second. The first says that energy is always conserved; the second law says that heat always flows from hot to cold. More commonly this is expressed in terms of entropy, which must increase overall in any process of change. Entropy is loosely equated with disorder, but the Austrian physicist Ludwig Boltzmann formulated it more rigorously as a quantity related to the total number of microstates a system has: how many equivalent ways its particles can be arranged.
The second law appears to show why change happens in the first place. At the level of individual particles, the classical laws of motion can be reversed in time. But the second law implies that change must happen in a way that increases entropy. This directionality is widely considered to impose an arrow of time. In this view, time seems to flow from past to future because the universe began for reasons not fully understood or agreed on in a low-entropy state and is heading toward one of ever higher entropy. The implication is that eventually heat will be spread completely uniformly and there will be no driving force for further change a depressing prospect that scientists of the mid-19th century called the heat death of the universe.
Boltzmanns microscopic description of entropy seems to explain this directionality. Many-particle systems that are more disordered and have higher entropy vastly outnumber ordered, lower-entropy states, so molecular interactions are much more likely to end up producing them. The second law seems then to be just about statistics: Its a law of large numbers. In this view, theres no fundamental reason why entropy cant decrease why, for example, all the air molecules in your room cant congregate by chance in one corner. Its just extremely unlikely.
Yet this probabilistic statistical physics leaves some questions hanging. It directs us toward the most probable microstates in a whole ensemble of possible states and forces us to be content with taking averages across that ensemble.
But the laws of classical physics are deterministic they allow only a single outcome for any starting point. Where, then, can that hypothetical ensemble of states enter the picture at all, if only one outcome is ever possible?
David Deutsch, a physicist at Oxford, has for several years been seeking to avoid this dilemma by developing a theory of (as he puts it) a world in which probability and randomness are totally absent from physical processes. His project, on which Marletto is now collaborating, is called constructor theory. It aims to establish not just which processes probably can and cant happen, but which are possible and which are forbidden outright.
Constructor theory aims to express all of physics in terms of statements about possible and impossible transformations. It echoes the way thermodynamics itself began, in that it considers change in the world as something produced by machines (constructors) that work in a cyclic fashion, following a pattern like that of the famous Carnot cycle, proposed in the 19th century to describe how engines perform work. The constructor is rather like a catalyst, facilitating a process and being returned to its original state at the end.
Say you have a transformation like building a house out of bricks, said Marletto. You can think of a number of different machines that can achieve this, to different accuracies. All of these machines are constructors, working in a cycle they return to their original state when the house is built.
But just because a machine for conducting a certain task might exist, that doesnt mean it can also undo the task. A machine for building a house might not be capable of dismantling it. This makes the operation of the constructor different from the operation of the dynamical laws of motion describing the movements of the bricks, which are reversible.
The reason for the irreversibility, said Marletto, is that for most complex tasks, a constructor is geared to a given environment. It requires some specific information from the environment relevant to completing that task. But the reverse task will begin with a different environment, so the same constructor wont necessarily work. The machine is specific to the environment it is working on, she said.
Recently, Marletto, working with the quantum theorist Vlatko Vedral at Oxford and colleagues in Italy, showed that constructor theory does identify processes that are irreversible in this sense even though everything happens according to quantum mechanical laws that are themselves perfectly reversible. We show that there are some transformations for which you can find a constructor for one direction but not the other, she said.
The researchers considered a transformation involving the states of quantum bits (qubits), which can exist in one of two states or in a combination, or superposition, of both. In their model, a single qubit B may be transformed from some initial, perfectly known state B1 to a target state B2 when it interacts with other qubits by moving past a row of them one qubit at a time. This interaction entangles the qubits: Their properties become interdependent, so that you cant fully characterize one of the qubits unless you look at all the others too.
As the number of qubits in the row gets very large, it becomes possible to bring B into state B2 as accurately as you like, said Marletto. The process of sequential interactions of B with the row of qubits constitutes a constructor-like machine that transforms B1 to B2. In principle you can also undo the process, turning B2 back to B1, by sending B back along the row.
But what if, having done the transformation once, you try to reuse the array of qubits for the same process with a fresh B? Marletto and colleagues showed that if the number of qubits in the row is not very large and you use the same row repeatedly, the array becomes less and less able to produce the transformation from B1 to B2. But crucially, the theory also predicts that the row becomes even less able to do the reverse transformation from B2 to B1. The researchers have confirmed this prediction experimentally using photons for B and a fiber optic circuit to simulate a row of three qubits.
You can approximate the constructor arbitrarily well in one direction but not the other, Marletto said. Theres an asymmetry to the transformation, just like the one imposed by the second law. This is because the transformation takes the system from a so-called pure quantum state (B1) to a mixed one (B2, which is entangled with the row). A pure state is one for which we know all there is to be known about it. But when two objects are entangled, you cant fully specify one of them without knowing everything about the other too. The fact is that its easier to go from a pure quantum state to a mixed state than vice versa because the information in the pure state gets spread out by entanglement and is hard to recover. Its comparable to trying to re-form a droplet of ink once it has dispersed in water, a process in which the irreversibility is imposed by the second law.
So here the irreversibility is just a consequence of the way the system dynamically evolves, said Marletto. Theres no statistical aspect to it. Irreversibility is not just the most probable outcome but the inevitable one, governed by the quantum interactions of the components. Our conjecture, said Marletto, is that thermodynamic irreversibility might stem from this.
Theres another way of thinking about the second law, though, that was first devised by James Clerk Maxwell, the Scottish scientist who pioneered the statistical view of thermodynamics along with Boltzmann. Without quite realizing it, Maxwell connected the thermodynamic law to the issue of information.
Maxwell was troubled by the theological implications of a cosmic heat death and of an inexorable rule of change that seemed to undermine free will. So in 1867 he sought a way to pick a hole in the second law. In his hypothetical scenario, a microscopic being (later, to his annoyance, called a demon) turns useless heat back into a resource for doing work. Maxwell had previously shown that in a gas at thermal equilibrium there is a distribution of molecular energies. Some molecules are hotter than others they are moving faster and have more energy. But they are all mixed at random so there appears to be no way to make use of those differences.
Enter Maxwells demon. It divides the compartment of gas in two, then installs a frictionless trapdoor between them. The demon lets the hot molecules moving about the compartments pass through the trapdoor in one direction but not the other. Eventually the demon has a hot gas on one side and a cooler one on the other, and it can exploit the temperature gradient to drive some machine.
The demon has used information about the motions of molecules to apparently undermine the second law. Information is thus a resource that, just like a barrel of oil, can be used to do work. But as this information is hidden from us at the macroscopic scale, we cant exploit it. Its this ignorance of the microstates that compels classical thermodynamics to speak of averages and ensembles.
Almost a century later, physicists proved that Maxwells demon doesnt subvert the second law in the long term, because the information it gathers must be stored somewhere, and any finite memory must eventually be wiped to make room for more. In 1961 the physicist Rolf Landauer showed that this erasure of information can never be accomplished without dissipating some minimal amount of heat, thus raising the entropy of the surroundings. So the second law is only postponed, not broken.
The informational perspective on the second law is now being recast as a quantum problem. Thats partly because of the perception that quantum mechanics is a more fundamental description Maxwells demon treats the gas particles as classical billiard balls, essentially. But it also reflects the burgeoning interest in quantum information theory itself. We can do things with information using quantum principles that we cant do classically. In particular, entanglement of particles enables information about them to be spread around and manipulated in nonclassical ways.
Continued here:
Physicists Trace the Rise in Entropy to Quantum Information - Quanta Magazine
- Physicists breed Schrdinger's cats to find boundaries of the | Cosmos - Cosmos [Last Updated On: May 3rd, 2017] [Originally Added On: May 3rd, 2017]
- The application of three-axis low energy spectroscopy in quantum physics research - Phys.Org [Last Updated On: May 3rd, 2017] [Originally Added On: May 3rd, 2017]
- Scientists 'BREED' Schrodinger's Cat in massive quantum physics breakthrough - Express.co.uk [Last Updated On: May 3rd, 2017] [Originally Added On: May 3rd, 2017]
- Quantum Physics: Are Entangled Particles Connected Via An Undetected Dimension? - Forbes [Last Updated On: May 3rd, 2017] [Originally Added On: May 3rd, 2017]
- The World Of Quantum Physics: EVERYTHING Is Energy : In5D ... [Last Updated On: May 3rd, 2017] [Originally Added On: May 3rd, 2017]
- Introduction to quantum mechanics - Wikipedia [Last Updated On: May 3rd, 2017] [Originally Added On: May 3rd, 2017]
- A general election, like quantum physics, is a thing of waves and particles - The Tablet [Last Updated On: May 4th, 2017] [Originally Added On: May 4th, 2017]
- 14-Year-Old Earns Physics Degree From TCU CBS Dallas / Fort ... - CBS DFW [Last Updated On: May 11th, 2017] [Originally Added On: May 11th, 2017]
- Quantum Entanglement Persists Even Under High Accelerations ... - International Business Times [Last Updated On: May 11th, 2017] [Originally Added On: May 11th, 2017]
- Quantum Entanglement Persists Even Under High Accelerations, Experiments Reveal - International Business Times [Last Updated On: May 11th, 2017] [Originally Added On: May 11th, 2017]
- Quantum - Wikipedia [Last Updated On: May 11th, 2017] [Originally Added On: May 11th, 2017]
- Unbreakable quantum entanglement - Phys.Org [Last Updated On: May 11th, 2017] [Originally Added On: May 11th, 2017]
- Physics may bring faster solutions for tough computational problems - Phys.Org [Last Updated On: May 14th, 2017] [Originally Added On: May 14th, 2017]
- UBC researchers propose answer to fundamental space problem - CBC.ca [Last Updated On: May 17th, 2017] [Originally Added On: May 17th, 2017]
- Quantum Biology and the Frog Prince - ScienceBlog.com (blog) [Last Updated On: May 18th, 2017] [Originally Added On: May 18th, 2017]
- The Marriage Of Einstein's Theory Of Relativity And Quantum Physics Depends On The Pull Of Gravity - Forbes [Last Updated On: May 18th, 2017] [Originally Added On: May 18th, 2017]
- New Research May Reconcile General Relativity and Quantum Mechanics - Futurism [Last Updated On: May 18th, 2017] [Originally Added On: May 18th, 2017]
- The Bizarre Quantum Test That Could Keep Your Data Secure - WIRED [Last Updated On: May 20th, 2017] [Originally Added On: May 20th, 2017]
- Testing quantum field theory in a quantum simulator - Phys.org - Phys.Org [Last Updated On: May 20th, 2017] [Originally Added On: May 20th, 2017]
- A classic quantum test could reveal the limits of the human mind - New Scientist [Last Updated On: May 20th, 2017] [Originally Added On: May 20th, 2017]
- Teleportation Could Be Possible Using Quantum Physics - Futurism - Futurism [Last Updated On: May 22nd, 2017] [Originally Added On: May 22nd, 2017]
- Nobel winner to talk cats, computers and quantum physics - AroundtheO [Last Updated On: May 23rd, 2017] [Originally Added On: May 23rd, 2017]
- Could Ant-Man Beat Superman With Quantum Physics? - Heroic Hollywood (blog) [Last Updated On: May 26th, 2017] [Originally Added On: May 26th, 2017]
- Physicists Discover Geometry Underlying Particle Physics [Last Updated On: May 26th, 2017] [Originally Added On: May 26th, 2017]
- Home - Center for Quantum Activism [Last Updated On: May 26th, 2017] [Originally Added On: May 26th, 2017]
- Physics - Wikipedia [Last Updated On: May 26th, 2017] [Originally Added On: May 26th, 2017]
- What Quantum Physics Can Tell Us about the Afterlife ... [Last Updated On: May 26th, 2017] [Originally Added On: May 26th, 2017]
- A Quantum Physicist Explains How Ant-Man Can Beat Superman - Inverse [Last Updated On: May 28th, 2017] [Originally Added On: May 28th, 2017]
- Academic Journal: Quantum Physics Is 'Oppressive' to Marginalized People - National Review [Last Updated On: May 30th, 2017] [Originally Added On: May 30th, 2017]
- University of Arizona Scholar Creates a Feminist Brand of Physics to ... - Breitbart News [Last Updated On: June 1st, 2017] [Originally Added On: June 1st, 2017]
- Feminist Launches 'Intersectional Quantum Physics' to End Newton's 'Oppression' - PJ Media [Last Updated On: June 1st, 2017] [Originally Added On: June 1st, 2017]
- In atomic propellers, quantum phenomena can mimic everyday ... - Phys.Org [Last Updated On: June 1st, 2017] [Originally Added On: June 1st, 2017]
- Quantum physics is oppressive - Patheos - Patheos (blog) [Last Updated On: June 5th, 2017] [Originally Added On: June 5th, 2017]
- It's widely abused as a buzzword. But can quantum mechanics explain how we think? - National Post [Last Updated On: June 5th, 2017] [Originally Added On: June 5th, 2017]
- Quantum Physics and Love are Super Weird and Confusing, but This Play Makes Sense of Them Both - LA Magazine [Last Updated On: June 6th, 2017] [Originally Added On: June 6th, 2017]
- One step closer to the quantum internet by distillation - Phys.Org [Last Updated On: June 7th, 2017] [Originally Added On: June 7th, 2017]
- Solving systems of linear equations with quantum mechanics - Phys.Org [Last Updated On: June 10th, 2017] [Originally Added On: June 10th, 2017]
- Neural networks take on quantum entanglement - Phys.Org [Last Updated On: June 14th, 2017] [Originally Added On: June 14th, 2017]
- Chinese satellite breaks a quantum physics record, beams entangled photons from space to Earth - Los Angeles Times [Last Updated On: June 15th, 2017] [Originally Added On: June 15th, 2017]
- Cybersecurity Attacks Are a Global Threat. Chinese Scientists Have the Answer: Quantum Mechanics - Newsweek [Last Updated On: June 16th, 2017] [Originally Added On: June 16th, 2017]
- New Quantum-Entanglement Record Could Spur Hack-Proof Communications - Yahoo News [Last Updated On: June 18th, 2017] [Originally Added On: June 18th, 2017]
- What Is Quantum Mechanics? - livescience.com [Last Updated On: June 18th, 2017] [Originally Added On: June 18th, 2017]
- China sets new record for quantum entanglement en route to build new communication network - NEWS.com.au [Last Updated On: June 19th, 2017] [Originally Added On: June 19th, 2017]
- Physicists Demonstrate Record Breaking Long-Distance Quantum Entanglement in Space - Futurism [Last Updated On: June 21st, 2017] [Originally Added On: June 21st, 2017]
- Viewpoint: A Roadmap for a Scalable Topological Quantum Computer - Physics [Last Updated On: June 22nd, 2017] [Originally Added On: June 22nd, 2017]
- How Schrdinger's Cat Helps Explain the New Findings About the Quantum Zeno Effect - Futurism [Last Updated On: June 22nd, 2017] [Originally Added On: June 22nd, 2017]
- BMW and Volkswagen Try to Beat Apple and Google at Their Own Game - New York Times [Last Updated On: June 23rd, 2017] [Originally Added On: June 23rd, 2017]
- How quantum physics could revolutionize casinos and betting if you can understand it - Casinopedia [Last Updated On: June 23rd, 2017] [Originally Added On: June 23rd, 2017]
- Quantum thermometer or optical refrigerator? - Phys.org - Phys.Org [Last Updated On: June 23rd, 2017] [Originally Added On: June 23rd, 2017]
- Atomic imperfections move quantum communication network closer ... - Phys.Org [Last Updated On: June 24th, 2017] [Originally Added On: June 24th, 2017]
- DoE Launches Chicago Quantum Exchange - HPCwire (blog) [Last Updated On: June 26th, 2017] [Originally Added On: June 26th, 2017]
- Google to Achieve "Supremacy" in Quantum Computing by the End of 2017 - Big Think [Last Updated On: June 26th, 2017] [Originally Added On: June 26th, 2017]
- Physicists settle debate over how exotic quantum particles form - Phys.Org [Last Updated On: June 27th, 2017] [Originally Added On: June 27th, 2017]
- Physicists make quantum leap in understanding life's nanoscale machinery - Phys.Org [Last Updated On: June 27th, 2017] [Originally Added On: June 27th, 2017]
- How quantum trickery can scramble cause and effect - Nature.com [Last Updated On: June 28th, 2017] [Originally Added On: June 28th, 2017]
- Berkeley Lab Intern Finds Her Way in Particle Physics | Berkeley Lab - Lawrence Berkeley National Laboratory [Last Updated On: June 28th, 2017] [Originally Added On: June 28th, 2017]
- Quantum Physics News - Phys.org - News and Articles on ... [Last Updated On: June 28th, 2017] [Originally Added On: June 28th, 2017]
- Quantum computers are about to get real - Science News Magazine [Last Updated On: June 29th, 2017] [Originally Added On: June 29th, 2017]
- Physics4Kids.com: Modern Physics: Quantum Mechanics [Last Updated On: June 29th, 2017] [Originally Added On: June 29th, 2017]
- Payments Innovation - A Quantum World Of Payments - Finextra (blog) [Last Updated On: June 30th, 2017] [Originally Added On: June 30th, 2017]
- Why can't quantum theory and relativity get along? - Brantford Expositor [Last Updated On: June 30th, 2017] [Originally Added On: June 30th, 2017]
- New method could enable more stable and scalable quantum computing, physicists report - Phys.Org [Last Updated On: June 30th, 2017] [Originally Added On: June 30th, 2017]
- Telecommunications, Meet Quantum Physics - Electronics360 [Last Updated On: June 30th, 2017] [Originally Added On: June 30th, 2017]
- How young is too young to talk to kids about science? Never, says one quantum physicist - ABC Local [Last Updated On: July 9th, 2017] [Originally Added On: July 9th, 2017]
- Supercool breakthrough brings new quantum benchmark - Phys.org - Phys.Org [Last Updated On: July 9th, 2017] [Originally Added On: July 9th, 2017]
- Physics For Toddlers . News | OPB - OPB News [Last Updated On: July 9th, 2017] [Originally Added On: July 9th, 2017]
- Quantum Physics Provide Evidence that the Future Influences the Past - Edgy Labs (blog) [Last Updated On: July 9th, 2017] [Originally Added On: July 9th, 2017]
- This quantum theory predicts that the future might be influencing the ... - ScienceAlert [Last Updated On: July 9th, 2017] [Originally Added On: July 9th, 2017]
- Physicists May Have Discovered One of the Missing Pieces of Quantum Theory - Futurism [Last Updated On: July 9th, 2017] [Originally Added On: July 9th, 2017]
- Something New For Baby To Chew On: Rocket Science And ... - NPR - NPR [Last Updated On: July 9th, 2017] [Originally Added On: July 9th, 2017]
- A New Quantum Theory Predicts That the Future Could Be Influencing the Past - Big Think [Last Updated On: July 14th, 2017] [Originally Added On: July 14th, 2017]
- Basic Assumptions of Physics Might Require the Future to Influence ... - Gizmodo [Last Updated On: July 14th, 2017] [Originally Added On: July 14th, 2017]
- Scientists teleport particle into space in major breakthrough for quantum physics - The Independent [Last Updated On: July 14th, 2017] [Originally Added On: July 14th, 2017]
- Rockstar scientist David Reilly takes the axe to quantum physics - The Sydney Morning Herald [Last Updated On: July 14th, 2017] [Originally Added On: July 14th, 2017]
- Quantum Mechanics Could Shake Up Our Understanding of Earth's ... - Gizmodo [Last Updated On: July 14th, 2017] [Originally Added On: July 14th, 2017]
- The Standard Model of particle physics is brilliant and completely flawed - ABC Online [Last Updated On: July 17th, 2017] [Originally Added On: July 17th, 2017]
- Quantum mechanics inside Earth's core - Phys.org - Phys.Org [Last Updated On: July 17th, 2017] [Originally Added On: July 17th, 2017]
- Making a quantum leap in space research - Shanghai Daily (subscription) [Last Updated On: August 6th, 2017] [Originally Added On: August 6th, 2017]
- Unlocking the Secrets of Quantum Physics to Create New Materials - Yu News (blog) [Last Updated On: August 6th, 2017] [Originally Added On: August 6th, 2017]
- China's Silicon Valley aims to become the country's top research center - Abacus [Last Updated On: October 16th, 2019] [Originally Added On: October 16th, 2019]