Post-Newtonian gravitational effects in quantum interferometry
Abstract
We investigate general properties of optical interferometry in stationary spacetimes and apply the obtained results focusing on quantum-optical experiments in near-Earth environments. We provide a rigorous expression for the {gravitationally induced} phase difference and adapt the parametrized post-Newtonian formalism for calculations of polarization rotation. We investigate two optical versions of the Colella-Overhauser-Werner experiment and show that the phase difference is independent of the post-Newtonian parameter , making it a possible candidate for an optical test of the Einstein equivalence principle. Polarization rotation provides an example of the quantum clock variable, and while related to the optical Lense-Thirring effects, shows a qualitatively different behaviour.
Cite
@article{arxiv.1412.2440,
title = {Post-Newtonian gravitational effects in quantum interferometry},
author = {Aharon Brodutch and Alexei Gilchrist and Thomas Guff and Alexander R. H. Smith and Daniel R. Terno},
journal= {arXiv preprint arXiv:1412.2440},
year = {2015}
}
Comments
11 pages, 1 figure. Comments welcome