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具有复杂工作介质、完整奥托循环和启发式方法的量子热机

Quantum Heat Engines with Complex Working Media, Complete Otto Cycles and Heuristics.

作者信息

Johal Ramandeep S, Mehta Venu

机构信息

Department of Physical Sciences, Indian Institute of Science Education and Research Mohali, Sector 81, S.A.S. Nagar, Manauli PO 140306, Punjab, India.

出版信息

Entropy (Basel). 2021 Sep 1;23(9):1149. doi: 10.3390/e23091149.

Abstract

Quantum thermal machines make use of non-classical thermodynamic resources, one of which include interactions between elements of the quantum working medium. In this paper, we examine the performance of a quasi-static quantum Otto engine based on two spins of arbitrary magnitudes subject to an external magnetic field and coupled via an isotropic Heisenberg exchange interaction. It has been shown earlier that the said interaction provides an enhancement of cycle efficiency, with an upper bound that is tighter than the Carnot efficiency. However, the necessary conditions governing engine performance and the relevant upper bound for efficiency are unknown for the general case of arbitrary spin magnitudes. By analyzing extreme case scenarios, we formulate heuristics to infer the necessary conditions for an engine with uncoupled as well as coupled spin model. These conditions lead us to a connection between performance of quantum heat engines and the notion of majorization. Furthermore, the study of complete Otto cycles inherent in the average cycle also yields interesting insights into the average performance.

摘要

量子热机利用非经典热力学资源,其中之一包括量子工作介质各元素之间的相互作用。在本文中,我们研究了一种基于两个任意大小的自旋且置于外部磁场中并通过各向同性海森堡交换相互作用耦合的准静态量子奥托发动机的性能。此前已经表明,上述相互作用可提高循环效率,其上限比卡诺效率更严格。然而,对于任意自旋大小的一般情况,控制发动机性能的必要条件以及相关的效率上限尚不清楚。通过分析极端情况,我们制定了启发式方法来推断具有非耦合以及耦合自旋模型的发动机的必要条件。这些条件使我们得出量子热机性能与优超概念之间的联系。此外,对平均循环中固有的完整奥托循环的研究也为平均性能带来了有趣的见解。

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