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Atom Interferometer Phase Shear and Spacetime Sectional Curvature

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arxiv 2508.21331 v1 pith:M34UG4AQ submitted 2025-08-29 physics.atom-ph gr-qc

classification physics.atom-phgr-qc
keywords atominterferometerspacetimephasepropertiescurvaturerelativitysectional
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Atom interferometry is a natural laboratory for precision tests of general relativity, but there is no simple relationship between atom interferometer phase and geometric properties of spacetime. Here we show that a different atom interferometer observable, the phase shear, can be expressed directly as the integrated sectional curvature over a spacetime surface enclosed by the interferometer arms and final beamsplitter. This is a consequence of a generalized Gauss-Bonnet theorem, which also explicitly computes small correction terms arising from gravitational redshift of atom optics pulses. This synthesis of quantum mechanics, relativity, and differential geometry affords a manifestly coordinate-free and representation-free means of measuring spacetime properties. Additionally, it provides a convenient computational tool for predicting atom interferometer properties in arbitrary background spacetimes.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Exact Semiclassical Phase Shifts for Relativistic Atom Interferometers in Flat Spacetime

    physics.atom-ph 2026-07 accept novelty 7.0 of 10

    Within the semiclassical short-pulse approximation, exact flat-spacetime phase shifts are obtained for Mach-Zehnder, resonant, and LMT clock and two-photon atom interferometers, including the closed form ω_a(1+ω_a/2m)...

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