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Updated: Jan 30, 2026

Author Spotlight: Introduction to Active Probe Atomic Force Microscopy with Quattro-Parallel Cantilever Arrays
Published on: June 13, 2023
A cavity-array microscope for parallel single-atom interfacing
Adam L Shaw1,2, Anna Soper2, Danial Shadmany1
1Department of Physics, Stanford University, Stanford, CA, USA.
Abstract:
Neutral-atom arrays and optical cavity quantum electrodynamics systems have developed in parallel as central pillars of modern experimental quantum science1-3. Although each platform has shown exceptional capabilities-such as high-fidelity quantum logic4-7 in atom arrays and strong light-matter coupling in cavities8-10-their combination holds promise for realizing fast and non-destructive atom measurement11, building large-scale quantum networks12-17 and engineering hybrid atom-photon Hamiltonians18-20. However, so far, experiments integrating the two platforms have been limited to spatially interfacing the entire atom array with one global cavity mode21-26, 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 elements26,27, and instead uses a free-space cavity geometry with intra-cavity lenses28,29 to realize above-unity peak cooperativity with micrometre-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 through a fibre array as a proof of principle for networking applications30. As an outlook, we realize a next-generation iteration of the platform with over 500 cavities and a nearly 10-fold improvement in finesse. Our work unlocks the regime of many-cavity quantum electrodynamics and opens an unexplored frontier of large-scale quantum networking with atom arrays.
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