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利用例外点对量子热机进行动态控制。

Dynamical control of quantum heat engines using exceptional points.

作者信息

Zhang J-W, Zhang J-Q, Ding G-Y, Li J-C, Bu J-T, Wang B, Yan L-L, Su S-L, Chen L, Nori F, Özdemir Ş K, Zhou F, Jing H, Feng M

机构信息

State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Institute of Physics and Mathematics, Innovation Academy of Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan, China.

Research Center for Quantum Precision Measurement, Guangzhou Institute of Industry Technology, 511458, Guangzhou, China.

出版信息

Nat Commun. 2022 Oct 20;13(1):6225. doi: 10.1038/s41467-022-33667-1.

Abstract

A quantum thermal machine is an open quantum system coupled to hot and cold thermal baths. Thus, its dynamics can be well understood using the concepts and tools from non-Hermitian quantum systems. A hallmark of non-Hermiticity is the existence of exceptional points where the eigenvalues of a non-Hermitian Hamiltonian or a Liouvillian superoperator and their associated eigenvectors coalesce. Here, we report the experimental realization of a single-ion heat engine and demonstrate the effect of Liouvillian exceptional points on the dynamics and the performance of a quantum heat engine. Our experiments have revealed that operating the engine in the exact- and broken-phases, separated by a Liouvillian exceptional point, respectively during the isochoric heating and cooling strokes of an Otto cycle produces more work and output power and achieves higher efficiency than executing the Otto cycle completely in the exact phase where the system has an oscillatory dynamics and higher coherence. This result opens interesting possibilities for the control of quantum heat engines and will be of interest to other research areas that are concerned with the role of coherence and exceptional points in quantum processes and in work extraction by thermal machines.

摘要

量子热机是一种与热库和冷库耦合的开放量子系统。因此,利用非厄米量子系统的概念和工具可以很好地理解其动力学。非厄米性的一个标志是存在例外点,在这些点上,非厄米哈密顿量或刘维尔超算符的本征值及其相关的本征向量会合并。在此,我们报告了单离子热机的实验实现,并展示了刘维尔例外点对量子热机动力学和性能的影响。我们的实验表明,在奥托循环的等容加热和冷却冲程期间,分别在由刘维尔例外点分隔的精确相和破缺相中操作热机,比在系统具有振荡动力学和更高相干性的精确相中完全执行奥托循环产生更多的功和输出功率,并实现更高的效率。这一结果为量子热机的控制开辟了有趣的可能性,并且将引起其他关注相干性和例外点在量子过程以及热机做功提取中的作用的研究领域的兴趣。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d2b/9584956/5288891d36bc/41467_2022_33667_Fig1_HTML.jpg

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