English

Effective inertial frame in an atom interferometric test of the equivalence principle

Atomic Physics 2018-05-09 v2 General Relativity and Quantum Cosmology Quantum Physics

Abstract

In an ideal test of the equivalence principle, the test masses fall in a common inertial frame. A real experiment is affected by gravity gradients, which introduce systematic errors by coupling to initial kinematic differences between the test masses. We demonstrate a method that reduces the sensitivity of a dual-species atom interferometer to initial kinematics by using a frequency shift of the mirror pulse to create an effective inertial frame for both atomic species. This suppresses the gravity-gradient-induced dependence of the differential phase on initial kinematic differences by a factor of 100 and enables a precise measurement of these differences. We realize a relative precision of Δg/g6×1011\Delta g / g \approx 6 \times 10^{-11} per shot, which improves on the best previous result for a dual-species atom interferometer by more than three orders of magnitude. By suppressing gravity gradient systematic errors to below one part in 101310^{13}, these results pave the way for an atomic test of the equivalence principle at an accuracy comparable with state-of-the-art classical tests.

Keywords

Cite

@article{arxiv.1711.09986,
  title  = {Effective inertial frame in an atom interferometric test of the equivalence principle},
  author = {Chris Overstreet and Peter Asenbaum and Tim Kovachy and Remy Notermans and Jason M. Hogan and Mark A. Kasevich},
  journal= {arXiv preprint arXiv:1711.09986},
  year   = {2018}
}

Comments

5 pages, 4 figures