腔量子电动力学
接口
量子
物理
联轴节(管道)
量子网络
Atom(片上系统)
量子光学
量子计算机
量子成像
纳米光子学
光学
量子传感器
光电子学
量子技术
量子系统
量子模拟器
拓扑(电路)
原子光学
量子效率
光探测
开放量子系统
光子学
量子力学
波导管
里德堡原子
衍射
量子信息科学
经典电磁学
工作(物理)
作者
Adam L. Shaw,Anna Soper,Danial Shadmany,Aishwarya Kumar,Lukas Palm,Da-Yeon Koh,Vassilios Kaxiras,Lavanya Taneja,Matt Jaffe,David Schuster,Jonathan Simon
出处
期刊:Nature
[Nature Portfolio]
日期:2026-01-28
卷期号:650 (8101): 320-326
被引量:2
标识
DOI:10.1038/s41586-025-10035-9
摘要
Neutral atom arrays and optical cavity QED systems have developed in parallel as central pillars of modern experimental quantum science. While each platform has demonstrated exceptional capabilities-such as high-fidelity quantum logic in atom arrays, and strong light-matter coupling in cavities-their combination holds promise for realizing fast and non-destructive atom measurement, building large-scale quantum networks, and engineering hybrid atom-photon Hamiltonians. However, to date, experiments integrating the two platforms have been limited to interfacing the entire atom array with one global cavity mode, a configuration that constrains addressability, parallelism, and scalability. Here we introduce the cavity array microscope, an experimental platform where each individual atom is strongly coupled to its own individual cavity across a two-dimensional array of over 40 modes. Our approach requires no nanophotonic elements, and instead uses a new free-space cavity geometry with intra-cavity lenses to realize above-unity peak cooperativity with micron-scale mode waists and spacings, compatible with typical atom array length scales while keeping atoms far from dielectric surfaces. We achieve homogeneous atom-cavity coupling, and show fast, non-destructive, parallel readout on millisecond timescales, including cavity-resolved readout into a fiber array as a proof-of-principle for future networking applications. This platform is species-agnostic and scalable, and we expect key metrics to further improve in a next-generation realization anticipated to be compatible with glass-cell-based experiments. Our work unlocks, for the first time, the regime of many-cavity QED, and opens an unexplored frontier of large-scale quantum networking with atom arrays.
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