Optomechanical self-organization in a mesoscopic atom array

IF 17.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Jacquelyn Ho, Yue-Hui Lu, Tai Xiang, Cosimo C. Rusconi, Stuart J. Masson, Ana Asenjo-Garcia, Zhenjie Yan, Dan M. Stamper-Kurn
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Abstract

Increasing the number of particles in a system often leads to qualitative changes in its properties, such as breaking of symmetries and the appearance of phase transitions. This renders a macroscopic system fundamentally different from its individual microscopic constituents. Lying between these extremes, mesoscopic systems exhibit microscopic fluctuations that influence behaviour on longer length scales, leading to critical phenomena and dynamics. Therefore, tracing the properties of well-controlled mesoscopic systems can help bridge the gap between an exact description of few-body microscopic systems and the emergent description of many-body systems. Here we explore the mesoscopic signatures of an optomechanical self-organization phase transition using arrays of cold atoms inside an optical cavity. By precisely engineering atom–cavity interactions, we reveal how critical behaviour depends on the atom number, identify characteristic dynamical behaviours in the self-organized regime and observe a finite optomechanical susceptibility at the critical point. These findings advance our understanding of particle-number- and time-resolved properties of phase transitions in mesoscopic systems.

Abstract Image

介观原子阵列中的光力学自组织
增加系统中粒子的数量通常会导致其性质的质变,例如对称性的破坏和相变的出现。这使得宏观系统从根本上不同于它的个别微观组成部分。介于这两个极端之间,介观系统表现出微观波动,影响更长的尺度上的行为,导致临界现象和动力学。因此,追踪控制良好的介观系统的性质可以帮助弥合对少体微观系统的精确描述和对多体系统的紧急描述之间的差距。在这里,我们利用光学腔内的冷原子阵列来探索光力学自组织相变的介观特征。通过精确工程原子-腔相互作用,我们揭示了临界行为如何依赖于原子序数,确定了自组织状态下的特征动力学行为,并在临界点处观察到有限的光力学敏感性。这些发现促进了我们对介观体系中相转变的粒子数和时间分辨性质的理解。
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来源期刊
Nature Physics
Nature Physics 物理-物理:综合
CiteScore
30.40
自引率
2.00%
发文量
349
审稿时长
4-8 weeks
期刊介绍: Nature Physics is dedicated to publishing top-tier original research in physics with a fair and rigorous review process. It provides high visibility and access to a broad readership, maintaining high standards in copy editing and production, ensuring rapid publication, and maintaining independence from academic societies and other vested interests. The journal presents two main research paper formats: Letters and Articles. Alongside primary research, Nature Physics serves as a central source for valuable information within the physics community through Review Articles, News & Views, Research Highlights covering crucial developments across the physics literature, Commentaries, Book Reviews, and Correspondence.
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