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具有晶格限制原子的微尺度回音壁模式光源。

Microscale whispering-gallery-mode light sources with lattice-confined atoms.

作者信息

Yu Deshui, Vollmer Frank

机构信息

Living Systems Institute, Physics and Astronomy, University of Exeter, Exeter, EX4 4QD, UK.

出版信息

Sci Rep. 2021 Jul 6;11(1):13899. doi: 10.1038/s41598-021-93295-5.

Abstract

Microlasers, relying on the strong coupling between active particles and optical microcavity, exhibit fundamental differences from conventional lasers, such as multi-threshold/thresholdless behavior and nonclassical photon emission. As light sources, microlasers possess extensive applications in precision measurement, quantum information processing, and biochemical sensing. Here we propose a whispering-gallery-mode microlaser scheme, where ultracold alkaline-earth metal atoms, i.e., gain medium, are tightly confined in a two-color evanescent lattice that is in the ring shape and formed around a microsphere. To suppress the influence of the lattice-induced ac Stark shift on the moderately-narrow-linewidth laser transition, the red-detuned trapping beams operate at a magic wavelength while the wavelength of the blue-detuned trapping beam is set close to the other magic wavelength. The tiny mode volume and high quality factor of the microsphere ensure the strong atom-microcavity coupling in the bad-cavity regime. As a result, both saturation photon and critical atom numbers, which characterize the laser performance, are substantially reduced below unity. We explore the lasing action of the coupled system by using the Monte Carlo approach. Our scheme may be potentially generalized to the microlasers based on the forbidden clock transitions, holding the prospect for microscale active optical clocks in precision measurement and frequency metrology.

摘要

微激光器依赖于活性粒子与光学微腔之间的强耦合,与传统激光器表现出根本差异,如多阈值/无阈值行为和非经典光子发射。作为光源,微激光器在精密测量、量子信息处理和生化传感方面有广泛应用。在此,我们提出一种回音壁模式微激光器方案,其中超冷碱土金属原子即增益介质,被紧密限制在围绕微球形成的环形双色消逝晶格中。为抑制晶格诱导的交流斯塔克位移对中等窄线宽激光跃迁的影响,失谐的红色俘获光束在一个魔术波长下工作,而失谐的蓝色俘获光束的波长设置在接近另一个魔术波长处。微球的微小模式体积和高品质因数确保了在坏腔 regime 中原子 - 微腔的强耦合。结果,表征激光性能的饱和光子数和临界原子数都大幅降低到低于 1。我们使用蒙特卡罗方法探索耦合系统的激光作用。我们的方案可能潜在地推广到基于禁戒时钟跃迁的微激光器,在精密测量和频率计量中为微尺度有源光学时钟带来前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0322/8260733/9002031cb201/41598_2021_93295_Fig1_HTML.jpg

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