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All-fiber laser system for all-optical Rb Bose Einstein condensate to space application.

作者信息

Li Lin, Zhou Cuiyun, Xiong Wei, Huang Minjie, Fang Su, Xu Xingping, Ji Jingwei, Gao Min, Song Tieqiang, Hong Yi, Liang Zhaogang, Chen Dijun, Hou Xia, Zhou Xiaoji, Chen Xuzong, Chen Weibiao, Wang Bin, Li Tang, Liu Liang

出版信息

Appl Opt. 2023 Oct 10;62(29):7844-7851. doi: 10.1364/AO.497749.

Abstract

In the development of the Cold Atom Physics Research Rack (CAPR) on board the Chinese Space Station, the laser system plays a critical role in preparing the all-optical Bose-Einstein condensates (BECs). An all-fiber laser system has been developed for CAPR to provide the required optical fields for atom interaction and to maintain the beam pointing in long-term operation. The laser system integrates a 780 nm fiber laser system and an all-fiber optical control module for sub-Doppler cooling, as well as an all-fiber 1064 nm laser system for evaporative cooling. The high-power, single-frequency 780 nm lasers are achieved through rare-Earth doped fiber amplification, fiber frequency-doubling, and frequency stabilization technology. The all-fiber optical control module divides the output of the 780 nm laser system into 15 channels and regulates them for cooling, trapping, and probing atoms. Moreover, the power consistency of each pair of cooling beams is ensured by three power tracking modules, which is a prerequisite for maintaining stable MOT and molasses. A high-power, compact, controlled-flexible, and highly stable l064 nm all-fiber laser system employing two-stage ytterbium-doped fiber amplifier (YDFA) technology has been designed for evaporative cooling in the optical dipole trap (ODT). Finally, an all-optical BEC is realized with this all-fiber laser system, which provides an alternative solution for trapping and manipulating ultra-cold atoms in challenging environmental conditions.

摘要

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