低功率光同步受激辐射力对极性分子的减速作用

IF 2.3 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Jin Wei , Di Wu , Taojing Dong , Chenyu Zu , Tao Yang , Yong Xia , Jianping Yin
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引用次数: 0

摘要

我们提出了一种利用受激力结合相位补偿和频率啁啾来实现极性分子短距离快速减速的理论方法。首先,利用三维蒙特卡罗方法模拟了减速氟化镁(MgF)和氟化镱(YbF)分子的动态过程,发现在每行波激光功率仅为0.44 W的MgF和0.21 W的YbF下,纵向速度为200 m/s的缓冲气冷分子束可以减速到5 m/s以下。其次,我们估计了装载到磁光阱(MOT)中的分子数量。该方案克服了受激辐射力的空间不均匀性,降低了对激光功率的高要求,这是以往未见报道的。这些新结果将为光学慢化和将致密分子物种加载到MOT中以实现量子简并提供及时有效的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deceleration of polar molecules by synchronous stimulated radiation force with low power light
We propose a theoretical approach for rapid deceleration over short distance on polar molecules by using stimulated force combined with a phase compensation and frequency chirping. First, we simulate the dynamic processes of the decelerated magnesium fluoride (MgF) and ytterbium fluoride (YbF) molecules using the 3D Monte-Carlo method, and find that a buffer-gas-cooled molecular beam with a longitudinal velocity of 200 m/s can be decelerated to be below 5 m/s at a laser power of only 0.44 W for MgF and 0.21 W for YbF per traveling wave. Second, we estimate the number of molecules loaded into the magneto-optical trap (MOT). This scheme overcomes the spatial inhomogeneity of stimulated radiation force and reduces the high laser power requirement, which have not been reported before. Such new results will provide a timely useful way for optical slowing and loading the dense molecule species into a MOT for realization of quantum degeneracy.
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来源期刊
Physics Letters A
Physics Letters A 物理-物理:综合
CiteScore
5.10
自引率
3.80%
发文量
493
审稿时长
30 days
期刊介绍: Physics Letters A offers an exciting publication outlet for novel and frontier physics. It encourages the submission of new research on: condensed matter physics, theoretical physics, nonlinear science, statistical physics, mathematical and computational physics, general and cross-disciplinary physics (including foundations), atomic, molecular and cluster physics, plasma and fluid physics, optical physics, biological physics and nanoscience. No articles on High Energy and Nuclear Physics are published in Physics Letters A. The journal''s high standard and wide dissemination ensures a broad readership amongst the physics community. Rapid publication times and flexible length restrictions give Physics Letters A the edge over other journals in the field.
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