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用于在平面硅器件中传播的原子束的级联准直器。

Cascaded collimator for atomic beams traveling in planar silicon devices.

作者信息

Li Chao, Chai Xiao, Wei Bochao, Yang Jeremy, Daruwalla Anosh, Ayazi Farrokh, Raman C

机构信息

School of Physics, Georgia Institute of Technology, 837 State St, Atlanta, GA, 30332, USA.

School of Electrical and Computer Engineering, Georgia Institute of Technology, 777 Atlantic Drive NW, Atlanta, GA, 30332, USA.

出版信息

Nat Commun. 2019 Apr 23;10(1):1831. doi: 10.1038/s41467-019-09647-3.

Abstract

Micro- and increasingly, nano-fabrication have enabled the miniaturization of atomic devices, from vapor cells to atom chips for Bose-Einstein condensation. Here we present microfabricated planar devices for thermal atomic beams. Etched microchannels were used to create highly collimated, continuous rubidium atom beams traveling parallel to a silicon wafer surface. Precise, lithographic definition of the guiding channels allowed for shaping and tailoring the velocity distributions in ways not possible using conventional machining. Multiple miniature beams with individually prescribed geometries were created, including collimated, focusing and diverging outputs. A "cascaded" collimator was realized with 40 times greater purity than conventional collimators. These localized, miniature atom beam sources can be a valuable resource for a number of quantum technologies, including atom interferometers, clocks, Rydberg atoms, and hybrid atom-nanophotonic systems, as well as enabling controlled studies of atom-surface interactions at the nanometer scale.

摘要

微米制造,以及日益发展的纳米制造,已经实现了原子器件的小型化,从用于玻色-爱因斯坦凝聚的蒸汽室到原子芯片。在此,我们展示了用于热原子束的微制造平面器件。蚀刻的微通道被用于产生高度准直、连续的铷原子束,这些原子束平行于硅片表面传播。引导通道的精确光刻定义使得能够以传统加工无法实现的方式对速度分布进行整形和调整。我们制造出了具有各自规定几何形状的多个微型束,包括准直、聚焦和发散输出。实现了一种“级联”准直器,其纯度比传统准直器高40倍。这些局部化的微型原子束源对于许多量子技术而言可能是一种宝贵资源,包括原子干涉仪、时钟、里德堡原子以及混合原子-纳米光子系统,同时也能实现对纳米尺度下原子-表面相互作用的可控研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41cb/6478944/cbe845fc8c40/41467_2019_9647_Fig1_HTML.jpg

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