H2020Индивидуална стипендия2018–2020

QUANTUM HARVEST · Harvesting Non-Classical Fluctuations with Thermal Machines

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2018-07-01 → 2020-12-21
Финансиране от ЕС
185 857 €
Участници
1
Схема
MSCA-IF

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Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Harvesting Non-Classical Fluctuations with Thermal Machines

Quantum mechanics, the theory describing the very small and very cold, makes fascinating predictions with puzzling interpretations. A popular example is provided by a quantum bit (qubit), which unlike a classical bit cannot only encode either 0 or 1 but may be in what is called a superposition of both. Interestingly, when observing the qubit, the outcome is still either 0 or 1. Which of those outcomes occurs is, according to quantum theory, completely random. Only the probability for observing 0 or 1 can be known in advance. What exactly happens during a measurement, and how to interpret it, remains a topic of debate even more than a century after the introduction of quantum mechanics. Such quantum features are not only an academic curiosity but may result in technological advances in, e.g., the fields of information theory and cryptography. For instance, a quantum computer based on qubits may outperform a classical computer in certain tasks. In many areas of physics, it is still an open question if such a quantum advantage exists, i.e., if quantum theory can be leveraged to design technological devices that perform better than what is allowed by classical theories. A promising framework for addressing the question of a potential quantum advantage is provided by thermodynamics. Thermodynamics investigates concepts such as heat, work, and temperature and it played a pivotal role in the industrial revolution, which brought about immensely useful machines such as steam engines, paving the way for modern devices ranging from refrigerators to solar cells. Currently, thermodynamics is actively being investigated in the quantum regime. In contrast to conventional thermal machines such as steam engines, for quantum features to become relevant, quantum thermal machines are usually extremely small. One important consequence of their small size is that fluctuations matter. Let us take a thermoelectric generator as an example. Such devices use heat to generate electricity and find applications in many areas ranging from the Mars Perseverance Rover to the automobile industry. A macroscopic thermoelectric generator, which may be centimeters in size, produces a relatively stable electric current. Nevertheless, the current will exhibit fluctuations, being sometimes larger, sometimes smaller. Scaling the generator down to the nano-scale (1 nanometer is one billionth of a meter), the produced electric current will become smaller and become comparable to its fluctuations. While these fluctuations may seem detrimental, they can actually contain a lot of interesting information about the physical properties of the system under investigation. To appreciate this, it is illustrative to consider possible sources of fluctuations. For instance, an electric current may fluctuate because the electrons that carry the current bounce off obstacles on their way in an unpredictible fashion. This is a classical source of fluctuations. Intriguingly, quantum mechanics offers sources of fluctuations that are absent in classical theory. These are related to the fundamental randomness in measurement outcomes, as discussed above using the example of a qubit. In this project, we investigated fluctuations of thermodynamic observables, such as work and heat with the aim to improve quantum machines, i.e., to harvest the fluctuations. Our results provide a considerable step forward in understanding the fluctuations of thermodynamic observables. In particular, we found that the first law of thermodynamics, which splits energy changes into heat and work, may break down because of quantum fluctuations. This provides a new perspective on the fundamental concepts of heat and work with a large potential impact on upcoming quantum technologies. Furthermore our results provide crucial insight into the connection between information and thermodynamics, a topic that is of crucial importance in downsizing information technology.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The goal of this action is to contribute towards the development of thermal machines which harvest the thermal as well as quantum fluctuations that are present in nanoscopic devices. To this end, a better understanding of fluctuations in thermal machines is required. The present proposal therefore includes a thorough investigation of fluctuations in quantum thermal machines. A focus lies on the non-classical character of these fluctuations and on the extraction of work from quantum heat engines. The proposal is divided into four work packages. In order to certify non-classical behavior, the first work package develops appropriate witnesses of non-classicality. The fluctuations in thermal machines are then investigated in three complementary work packages. Work package two investigates the fluctuations of heat, work, and efficiency in heat engine models. Non-classical behavior is expected to manifest itself in these fluctuations. A novel, Keldysh type input-output formalism will be developed to go beyond the standard regime of weak coupling between machine and thermal reservoirs. Work package three focuses on fluctuations that arise due to the finite size of thermal reservoirs present in mesoscopic systems. To this end, a novel formalism based on stochastic path integrals and quantum master equations will be developed. Work package four finally focuses on the crossover from a classical to a quantum regime. To this end, thermodynamic processes such as the expansion of a gas are investigated. Explicitly taking into account how work is extracted from the system, back-action effects from the corresponding quantum measurement are investigated. Together, these work packages give a rather complete picture on different types of fluctuations in quantum thermal machines. This is expected to settle the open question of a quantum advantage in thermal machines and will likely lead to novel types of machines which harvest thermal as well as quantum fluctuations.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз