Gravitational wave detection via photon-graviton scattering and quantum interference
Abstract
We present a fully quantum field-theoretic framework for gravitational wave (GW) detection in which the interaction is described as photon-graviton scattering. In this picture, the GW acts as a coherent background that induces inelastic energy exchanges with the electromagnetic field - analogous to the Stokes and anti-Stokes shifts in Raman spectroscopy. We propose a detection scheme sensitive to this microscopic mechanism based on Hong-Ou-Mandel interference. We show that the scattering-induced phase shifts render frequency-entangled photon pairs distinguishable, spoiling their destructive quantum interference. GW signal is thus encoded in the modulation of photon coincidence rates rather than classical field intensity, offering a complementary quantum probe of the gravitational universe that recovers the standard classical response in the macroscopic limit.
Cite
@article{arxiv.2601.20553,
title = {Gravitational wave detection via photon-graviton scattering and quantum interference},
author = {K. Hari and S. Shankaranarayanan},
journal= {arXiv preprint arXiv:2601.20553},
year = {2026}
}
Comments
23 pages, 6 figures, comments welcome