Testing Lorentz symmetry with Lunar Laser Ranging
A. Bourgoin, A. Hees, S. Bouquillon, C. Le Poncin-Lafitte and, G. Francou, M.-C. Angonin

TL;DR
This study uses lunar laser ranging data to set new, more stringent constraints on potential violations of Lorentz symmetry within the framework of the standard-model extension, with no evidence of such violations found.
Contribution
It introduces a new numerical lunar ephemeris within the SME framework and provides improved constraints on SME coefficients from LLR data analysis.
Findings
No evidence for Lorentz violation at specified levels.
Improved constraints on SME coefficients by factors up to 800.
Analysis covers data from 1969 to 2013.
Abstract
Lorentz symmetry violations can be parametrized by an effective field theory framework that contains both general relativity and the standard model of particle physics called the standard-model extension (SME). We present new constraints on pure gravity SME coefficients obtained by analyzing lunar laser ranging (LLR) observations. We use a new numerical lunar ephemeris computed in the SME framework and we perform a LLR data analysis using a set of 20721 normal points covering the period of August, 1969 to December, 2013. We emphasize that linear combination of SME coefficients to which LLR data are sensitive and not the same as those fitted in previous postfit residuals analysis using LLR observations and based on theoretical grounds. We found no evidence for Lorentz violation at the level of for , for and , for…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
