pt对称性在非厄米光子系统中的传感应用

IF 4.4 Q1 OPTICS
Zuoxian Wang, Zihua Liang, Jinsheng Hu, Peng Zhou, Lu Liu, Gen Hu, Weiyi Wang, Mao Ye
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引用次数: 0

摘要

近年来,非厄米物理和pt对称性的快速发展为超灵敏传感带来了新的机遇。特别是光学和光子系统中可控非保守过程的存在引发了基于奇点的传感技术的发展。通过灵活调整增益、损耗和耦合强度,可以实现一系列高分辨率传感方法,并具有片上集成的潜力。另一个重要的非厄米奇点是pt破缺相中的相干完全吸收激光(CPAL)点,它体现了激光和CPAL的共存,具有相当大的传感潜力。作为量子传感和计量的重要方法,光与碱金属原子系综之间的相互作用在测量超弱磁场、惯性和时间方面具有前所未有的灵敏度。因此,将pt对称性和基于奇点的传感研究从传统的固态波系统扩展到原子系综等扩散系统引起了广泛的关注。本文综述了PT/反PT对称非厄米系统中基于奇点传感的研究进展,重点介绍了光子平台,包括与波导、微腔、超表面等的集成。此外,传感应用与讨论进一步扩展到原子集成,预测未来的研究趋势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sensing Applications of PT-Symmetry in Non-Hermitian Photonic Systems

Sensing Applications of PT-Symmetry in Non-Hermitian Photonic Systems

In recent years, rapid advances in non-Hermitian physics and PT-symmetry have brought new opportunities for ultra-sensitive sensing. Especially the presence of controllable non-conservative processes in optical and photonic systems has triggered the development of singularity-based sensing. By flexibly tuning gain, loss, and coupling strength, a series of high-resolution sensing approaches can be realized, with the potential of on-chip integration. Another important non-Hermitian singularity is the coherent perfect absorption-lasing (CPAL) point in the PT-broken phase, which manifests the coexistence of lasing and CPA, exhibiting intriguing properties with considerable sensing potential. As a crucial method for quantum sensing and metrology, the interaction between light and alkali-metal atomic ensembles promises unprecedented sensitivity in the measurement of ultra-weak magnetic field, inertia, and time. Therefore, extending the study of PT-symmetry and singularity-based sensing from conventional solid-state wave systems to diffusive systems such as atomic ensembles is attracting wide attention. In this review, the development of singularity-based sensing in PT/anti-PT symmetric non-Hermitian systems is summarized, with a special focus on photonic platforms including integration with waveguides, microcavities, metasurface, etc. In addition, sensing applications with discussion further extended to atomic ensembles, projecting future research trends in the field.

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