中空光纤中尺度粒子和原子的光捕获:原理和应用

IF 20.6 Q1 OPTICS
Rui Wang, Wei Li, Zhiwen Xia, Hongchang Deng, Yao Zhang, Rongxin Fu, Shuailong Zhang, Tijmen G. Euser, Libo Yuan, Ningfang Song, Yi Jiang, Shangran Xie
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引用次数: 0

摘要

空心芯光纤是一种特殊的光波导类型,它可以在设计合理的包层结构包围的空气或液体芯中引导光。光纤的引导模式可以产生足够的光梯度力来平衡粒子的重力或限制原子云,在空心芯中形成稳定的光阱。悬浮物体可以通过光散射力的不平衡或通过反传播光束形成光学晶格,沿着光束轴在光纤长度上推进。与标准的自由空间光镊相比,克服HCF中激光束衍射的能力可以显着增加光学操作的范围,从而开辟了需要远距离光学控制的广泛应用。自首次在HCF中实现光阱以来,基于空心芯光纤的光阱(HCF- ot)已成为光镊的一个重要分支,引起了广泛的研究兴趣。在过去二十年中,HCF-OT的基本原理和应用方面取得了快速进展。近年来,在降低HCF的传播损耗方面取得了重大进展,使得HCF成为光学和光子学领域一个有吸引力的话题。这进一步促进了HCF-OT的研究和应用。本文从HCF的导光机理出发,重点讨论了空心核中光阱的相关问题。详细介绍了HCF-OT的基本原理和关键特征,从光学悬浮到操纵以及宏观粒子和原子的检测。讨论了HCF-OT的关键应用、面临的挑战和未来的发展方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Optical trapping of mesoscale particles and atoms in hollow-core optical fibers: principle and applications

Optical trapping of mesoscale particles and atoms in hollow-core optical fibers: principle and applications

Hollow-core fiber (HCF) is a special optical waveguide type that can guide light in the air or liquid core surrounded by properly designed cladding structures. The guiding modes of the fiber can generate sufficient optical gradient forces to balance the gravity of the particles or confine the atom clouds, forming a stable optical trap in the hollow core. The levitated objects can be propelled over the fiber length along the beam axis through an imbalance of the optical scattering forces or by forming an optical lattice by the counter-propagating beams. The ability to overcome the diffraction of the laser beam in HCF can significantly increase the range of the optical manipulation compared with standard free-space optical tweezers, opening up vast ranges of applications that require long-distance optical control. Since the first demonstration of optical trapping in HCF, hollow-core-fiber-based optical trap (HCF-OT) has become an essential branch of optical tweezer that draws intense research interests. Fast progress on the fundamental principle and applied aspects of HCF-OT has been visible over the past two decades. In recent years, significant milestones in reducing the propagation loss of HCF have been achieved, making HCF an attractive topic in the field of optics and photonics. This further promotes the research and applications of HCF-OT. This review starts from the mechanism of light guidance of HCF, mainly focusing on the issues related to the optical trap in the hollow core. The basic principles and key features of HCF-OT, from optical levitation to manipulation and the detection of macroscopic particles and atoms, are summarized in detail. The key applications of HCF-OT, the challenges and future directions of the technique are also discussed.

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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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