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中国物理学会期刊

基于腔冷原子系统的量子光力调控进展

Advances in quantum optomechanical control based on cavity cold-atom systems

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  • 腔光力学是量子科技领域的重要前沿方向, 其核心是研究电磁场与机械运动之间的相互作用, 并在此基础上实现精准调控与应用拓展. 该领域以量子力学为理论基础, 通过对光学微腔与机械振子的结构设计与参数调控, 实现光场与机械振动模式之间的高效耦合与精确操控, 进而产生并利用各类新奇量子效应. 近年来, 腔光力学已迅速发展成为融合量子光学、凝聚态物理与量子精密测量的交叉前沿学科, 在基础物理研究与量子信息科学等领域展现出重要应用价值. 腔冷原子系统凭借优异的环境隔离特性、长量子相干特性以及强光-物质相互作用, 成为实现强光力耦合、开展量子光力学研究的理想平台之一. 本文系统综述了基于腔冷原子系统的量子光力调控研究最新进展, 重点阐述腔光力学基本原理、腔冷原子体系中光力非线性的实验实现, 以及该系统在量子传感、量子存储与非经典量子态制备等方向的典型应用, 并对该领域未来发展与挑战进行了展望.

     

    Cavity optomechanics represents a frontier research direction in quantum science and technology, centered on the control and exploration of interactions between electromagnetic fields and mechanical motion. Rooted in quantum mechanics, this field realizes efficient coupling and precise manipulation of optical fields and mechanical vibrations through the structural design and precise regulation of optical microcavities and mechanical oscillators, thereby revealing and harnessing novel quantum phenomena. In recent years, cavity optomechanics has evolved into an interdisciplinary frontier integrating quantum optics, condensed matter physics, and quantum precision measurement, exhibiting profound application in both fundamental physics research and quantum information science. With advancements in technologies such as nanomanufacturing and laser cooling, optomechanical interactions have been successfully demonstrated in various experimental systems. Among these platforms, cavity cold-atom systems stand out as one of the ideal platforms for implementing quantum optomechanics. Featuring exceptional environmental isolation, long quantum coherence times, and strong light-matter interaction, these systems provide a crucial testbed for exploring strong and even ultra-strong optomechanical coupling effects as well as rich nonlinear quantum phenomena. This paper reviews the recent progress in optomechanical control and manipulation based on cavity cold-atom systems. We first outline the fundamental principles of standard cavity optomechanical systems. Then, we describe the experimental realization of linear and nonlinear optomechanical couplings in cold-atom systems. After that, we focus on the representative applications of this platform in high-precision quantum sensing, quantum memory, and the preparation of macroscopic nonclassical states. Finally, we give an outlook and challenges in this field.

     

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