High Cooperativity Using a Confocal-Cavity–QED Microscope

IF 11 Q1 PHYSICS, APPLIED
Ronen M. Kroeze, Brendan P. Marsh, K. Lin, Jonathan Keeling, B. Lev
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引用次数: 4

Abstract

Cavity quantum electrodynamics (QED) with cooperativity far greater than unity enables high-fidelity quantum sensing and information processing. The high-cooperativity regime is often reached through the use of short single-mode resonators. More complicated multimode resonators, such as the near-confocal optical Fabry-Pérot cavity, can provide intracavity atomic imaging in addition to high cooperativity. This capability has recently proved important for exploring quantum many-body physics in the driven-dissipative setting. In this work, we show that a confocal-cavity–QED microscope can realize cooperativity in excess of 110. This cooperativity is on par with the very best single-mode cavities (which are far shorter) and 21 times greater than single-mode resonators of similar length and mirror radii. The 1.7-µ m imaging resolution is naturally identical to the photon-mediated interaction range. We measure these quantities by determining the threshold of cavity superradiance when small optically tweezed Bose-Einstein condensates are pumped at various intracavity locations. Transmission measurements of an ex situ cavity corroborate these results. We provide a theoretical description that shows how cooperativity enhancement arises from the dispersive coupling to the atoms of many near-degenerate modes. DOI: 10.1103/PRXQuantum.4.020326
高协同性的共焦腔qed显微镜
腔量子电动力学(QED)具有远大于1的协同性,能够实现高效的量子传感和信息处理。通常通过使用短单模谐振器来达到高协同性状态。更复杂的多模谐振器,如近共焦光学Fabry-Pérot腔,除了提供高协同性外,还可以提供腔内原子成像。最近证明,这种能力对于在驱动耗散环境中探索量子多体物理非常重要。在这项工作中,我们证明了共焦腔-QED显微镜可以实现超过110的协同性。这种协同性与最好的单模腔(短得多)不相上下,是长度和镜半径相似的单模谐振器的21倍。1.7µm的成像分辨率自然与光子介导的相互作用范围相同。当在不同的腔内位置泵浦小的光学粗化玻色-爱因斯坦凝聚体时,我们通过确定腔超辐射的阈值来测量这些量。对非原位空腔的透射测量证实了这些结果。我们提供了一个理论描述,显示了许多近简并模式与原子的色散耦合如何产生协同性增强。DOI:10.1103/PRXQuantum.4.020326
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来源期刊
CiteScore
14.60
自引率
0.00%
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