Probing Gravity for One Minute with an Optical-Lattice Atom Interferometer

C. Panda, M. Tao, J. Eggelhof, M. Ceja, A. Reynoso, V. Xu, H. Mȕller
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引用次数: 1

Abstract

We have realized an atom interferometer that probes gravitational potentials by holding, rather than dropping, atoms. Up to one minute of coherence times are realized by suspending the spatially separated atomic wave packets in an optical lattice that is mode-filtered by an optical cavity. This trapped configuration suppresses phase variance due to vibrations by four to five orders of magnitude, overcoming the dominant noise source in atom-interferometric gravimeters. Recent progress in characterizing and reducing interferometer decoherence led to major increases in coherence and precision, paving the way to measurements of dark-energy candidates and probes of the quantum nature of gravity through measuring the gravity of source masses with record precision and spatial resolution.
用光学晶格原子干涉仪探测重力一分钟
我们已经实现了一种原子干涉仪,它通过握住原子而不是放下原子来探测引力势。通过将空间分离的原子波包悬浮在由光学腔进行模式过滤的光学晶格中,可以实现高达一分钟的相干时间。这种被捕获的结构将由于振动引起的相位变化抑制了4到5个数量级,克服了原子干涉重力仪中的主要噪声源。最近在表征和降低干涉仪退相干性方面的进展导致相干性和精度的大幅提高,为测量暗能量候选者和通过以创纪录的精度和空间分辨率测量源质量的引力来探测引力的量子性质铺平了道路。
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