Chiral quantum heating and cooling with an optically controlled ion.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy
Jin-Tao Bu, Jian-Qi Zhang, Ge-Yi Ding, Jia-Chong Li, Jia-Wei Zhang, Bin Wang, Wen-Qiang Ding, Wen-Fei Yuan, Liang Chen, Qi Zhong, Ali Keçebaş, Şahin K Özdemir, Fei Zhou, Hui Jing, Mang Feng
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Abstract

Quantum heat engines and refrigerators are open quantum systems, whose dynamics can be well understood using a non-Hermitian formalism. A prominent feature of non-Hermiticity is the existence of exceptional points (EPs), which has no counterpart in closed quantum systems. It has been shown in classical systems that dynamical encirclement in the vicinity of an EP, whether the loop includes the EP or not, could lead to chiral mode conversion. Here, we show that this is valid also for quantum systems when dynamical encircling is performed in the vicinity of their Liouvillian EPs (LEPs), which include the effects of quantum jumps and associated noise-an important quantum feature not present in previous works. We demonstrate, using a Paul-trapped ultracold ion, the first chiral quantum heating and refrigeration by dynamically encircling a closed loop in the vicinity of an LEP. We witness the cycling direction to be associated with the chirality and heat release (absorption) of the quantum heat engine (quantum refrigerator). Our experiments have revealed that not only the adiabaticity breakdown but also the Landau-Zener-Stückelberg process play an essential role during dynamic encircling, resulting in chiral thermodynamic cycles. Our observations contribute to further understanding of chiral and topological features in non-Hermitian systems and pave a way to exploring the relation between chirality and quantum thermodynamics.

Abstract Image

利用光学控制离子进行手性量子加热和冷却。
量子热机和冰箱是开放的量子系统,其动力学可以用非赫米特形式主义很好地理解。非ermiticity 的一个显著特点是例外点(EP)的存在,这在封闭量子系统中并不存在。在经典系统中已经证明,无论环路是否包括 EP,EP 附近的动态包围都可能导致手性模式转换。在这里,我们证明了当动态环绕在量子系统的Liouvillian EPs(LEPs)附近进行时,这也适用于量子系统,LEPs包括量子跃迁和相关噪声的影响--这是以前的研究中没有的重要量子特征。我们利用保罗俘获的超冷离子,通过在 LEP 附近动态环绕闭环,首次演示了手性量子加热和制冷。我们见证了循环方向与量子热引擎(量子冰箱)的手性和热量释放(吸收)相关。我们的实验发现,在动态环绕过程中,不仅绝热性击穿,而且朗道-齐纳-斯图克尔伯格过程也起着至关重要的作用,从而导致手性热力学循环。我们的观察有助于进一步理解非赫米提系统中的手性和拓扑特征,并为探索手性与量子热力学之间的关系铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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