用于原子应用的片上光学捕获

M. A. Perez, Evan A. Salim, D. Farkas, Janet Duggan, M. Ivory, D. Anderson
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引用次数: 2

摘要

为了简化依赖冷原子和超冷原子的光学捕获的应用,ColdQuanta正在开发将微型光学元件集成到真空原子芯片上的技术。结果是一种混合原子芯片,结合了用于光控制的真空微光学平台和用于磁控制的原子芯片。将光学元件放置在真空系统内部的芯片上,可以产生一个紧凑的系统,可以针对特定的实验,在这种情况下,光学晶格的产生。该技术的应用包括计时、惯性传感、重力测量、量子信息和量子多体系统仿真。ColdQuanta的GlasSi原子芯片技术在硅原子芯片的平面上集成了玻璃窗。与真空微光学工作台相结合,光学晶格可以在原子芯片窗口的几百微米范围内产生,通过该窗口,单个原子晶格位置可以以亚微米的空间分辨率成像。其结果是一个量子气体显微镜,可以在单晶格点的水平上研究光学晶格。与ColdQuanta在其miniMOT系统中的磁光阱(MOTs)和RuBECi(R)系统中的玻色-爱因斯坦凝聚(BECs)所取得的成果类似,ColdQuanta寻求将片上光学平台技术应用于商用交钥匙系统中的光学晶格研究。这些技术目前正在考虑在美国宇航局的冷原子实验室(CAL)进行晶格实验,计划在国际空间站上飞行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On-chip optical trapping for atomic applications
To simplify applications that rely on optical trapping of cold and ultracold atoms, ColdQuanta is developing techniques to incorporate miniature optical components onto in-vacuum atom chips. The result is a hybrid atom chip that combines an in-vacuum micro-optical bench for optical control with an atom chip for magnetic control. Placing optical components on a chip inside of the vacuum system produces a compact system that can be targeted to specific experiments, in this case the generation of optical lattices. Applications that can benefit from this technology include timekeeping, inertial sensing, gravimetry, quantum information, and emulation of quantum many-body systems. ColdQuanta’s GlasSi atom chip technology incorporates glass windows in the plane of a silicon atom chip. In conjunction with the in-vacuum micro-optical bench, optical lattices can be generated within a few hundred microns of an atom chip window through which single atomic lattice sites can be imaged with sub-micron spatial resolution. The result is a quantum gas microscope that allows optical lattices to be studied at the level of single lattice sites. Similar to what ColdQuanta has achieved with magneto-optical traps (MOTs) in its miniMOT system and with Bose- Einstein condensates (BECs) in its RuBECi(R) system, ColdQuanta seeks to apply the on-chip optical bench technology to studies of optical lattices in a commercially available, turnkey system. These techniques are currently being considered for lattice experiments in NASA’s Cold Atom Laboratory (CAL) slated for flight on the International Space Station.
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