New test of Lorentz invariance using the MICROSCOPE space mission
Abstract
We use data from the T-SAGE instrument on board the MICROSCOPE space mission to search for Lorentz violation in matter-gravity couplings as described by the Lorentz violating Standard-Model Extension (SME) coefficients , where () and () for the electron, proton and neutron. One of the phenomenological consequences of a non-zero value of those coefficients is that test bodies of different composition fall differently in an external gravitational field. This is similar to "standard" tests of the universality of free fall, but with a specific signature that depends on the orbital velocity and rotation of the Earth. We analyze data from five measurement sessions of MICROSCOPE spread over a year finding no evidence for such a signature, but setting constraints on linear combinations of the SME coefficients that improve on best previous results by one to two orders of magnitude. Additionally, our independent linear combinations are different from previous ones, which increases the diversity of available constraints, paving the way towards a full decorrelation of the individual coefficients.
Keywords
Cite
@article{arxiv.1912.03030,
title = {New test of Lorentz invariance using the MICROSCOPE space mission},
author = {Hélène Pihan-le Bars and Christine Guerlin and Aurélien Hees and Romain Peaucelle and Jay D. Tasson and Quentin G. Bailey and Geoffrey Mo and Pacôme Delva and Frédéric Meynadier and Pierre Touboul and Gilles Métris and Manuel Rodrigues and Joël Bergé and Peter Wolf},
journal= {arXiv preprint arXiv:1912.03030},
year = {2019}
}