INTREPID · INformaTion pRocessing and the thErmodynamics of PrecIsion in quantum Devices
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2022-03-01 → 2024-02-29
- Финансиране от ЕС
- 162 806 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Квантовите топлинни машини, като нано-размерни двигатели и хладилници, се изследват при условия, в които квантовите ефекти са водещи. Това помага да се разбере как се справят тези устройства с големите флуктуации на топлината и работата в микроскопичен мащаб.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
INformaTion pRocessing and the thErmodynamics of PrecIsion in quantum Devices
Thermal machines, i.e. engines and refrigerators, represent a pillar of all modern everyday technology. Generally, they can be grouped into two classes: (a) autonomous steady-state thermal machines, characterized by the simultaneous presence of multiple baths at different temperature and/or chemical potentials; (b) periodically driven thermal machines, which are operated by periodically changing in time both the mechanical parameters of the working system, as well as the temperature of its surrounding reservoir, thus generating power by external driving. Classically, their performance is quantified in terms of their power yield and their efficiency, the latter quantifying the ratio of useful work to the input energy (typically heat) provided, and, on average, achieving maximum efficiency always comes at the cost of vanishing power output, and vice versa. At the macroscopic level, fluctuations of thermodynamic quantities, such as power, are essentially negligible thanks to the law of large numbers. The ever-forward miniaturization has nowadays allowed to explore and control systems at the microscopic level, encroaching upon length scales where quantum effects become predominant. Genuine quantum properties such as coherent superposition and entanglement can now be achieved in a diverse set of experimental platforms, thus paving the way for next generation quantum technologies, such as quantum computers or nano-scale quantum thermal machines, whose promise is to outperform any classical counterpart. Whenever such nano-scale devices are considered, however, fluctuations of all thermodynamic quantities, such as heat and work, become extremely significant, since the regime of validity of the law of large numbers ceases to be valid. Crucially quantum thermal machines must operate reliably, i.e. their output should ideally exhibit small fluctuations over many runs. Achieving a determinate precision however inevitably comes at a cost in terms of thermodynamic resources, such as dissipated heat or excess work, thus massively impacting the machines’ performances. While the presence of genuine quantum features may lead to advantages in terms of average quantities, it raises the important question whether this comes at the cost of less precision/reliability and/or higher thermodynamic cost. The overarching goal of this proposal is to address the following question: what is the most general and fundamental thermodynamic cost of precision in genuine quantum thermal machines? This is articulated in two main Objectives: [O1]: Characterise the thermodynamic cost of precision for genuinely quantum periodically-driven thermal machines and quantum-measurement thermal machines. [O2]: Determine the thermodynamic cost of information processing and of precision in the Quantum-Field Machine. The results will be applicable, both in the near future and long terms, to second generation quantum technologies, ranging from quantum thermal machines to high-precision quantum sensors for metrology and finally to quantum computers.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The aim of this proposal is to characterise the thermodynamic cost of precision in genuinely quantum thermal machines (externally driven, quantum-information fuelled and autonomous heat engines and refrigerators). Precision in a physical system is related to fluctuations of measurable quantities, an aspect that becomes very relevant at the nano-scale. Achieving a machine with a certain reliability (i.e. precision in the output) inevitably comes at a cost in terms of thermodynamic resources, such as dissipated heat or excess work, thus massively impacting the machines’ performances. Thermodynamic Uncertainty Relations have represented a landmark first step in understanding this balance and their generalisation is now encroaching upon the laws of quantum mechanics. Combining them at a fundamental level still represents an almost uncharted territory, which promises exciting practical applications in the correct design of next generation quantum technologies.In this project I will determine the most fundamental tradeoff between precision and dissipation in quantum thermal machines in a novel and timely way, by combining my expertise in quantum and stochastic thermodynamics and in thermodynamic geometry with the experience of my host, Prof. Jens Eisert, in quantum information and quantum many-body physics. In particular, this will be done through a two-fold effort: a theoretical framework based on analytical and numerical results; a groundbreaking (yet feasible in the given timeframe) experiment on quantum field machines, based on the AtomChip technology that is being developed within a large FQXI grant recently won by the host and by the secondment (Prof. Jörg Schmiedmayer). I will perform this Action in the perfectly suited environment of the “Quantum many-body theory, quantum information theory” group at Freie Universität Berlin.
Оригинален текст от CORDIS (на английски).
Участници
- FREIE UNIVERSITAET BERLIN · BerlinКоординаторГермания
Връзки
Данни: CORDIS, © Европейски съюз
