Astrometric Effects of Gravitational Wave Backgrounds with non-Einsteinian Polarizations
Abstract
The Gaia mission offers a new opportunity to search for the low frequency gravitational wave background using astrometric measurements. In this paper, the astrometric effect of gravitational waves is reviewed, with a particular focus on the effect of non-Einsteinian gravitational wave polarizations. A stochastic gravitational wave background generates a correlated vector field of astrometric deflections on the sky. A convenient decomposition for the correlation matrix is introduced, enabling it to be calculated for all possible gravitational wave polarizations and compared to the redshift correlations from the pulsar-timing literature; in the case of a GR background of transverse traceless gravitational waves, this also allows us to identify an astrometric analog of the famous Hellings-Downs curve. Finally, the cross-correlation between the redshift and astrometric signal is also calculated; this may form the basis for future joint pulsar-timing and astrometry searches for arbitrarily polarized gravitational wave backgrounds.
Keywords
Cite
@article{arxiv.1804.00660,
title = {Astrometric Effects of Gravitational Wave Backgrounds with non-Einsteinian Polarizations},
author = {Deyan P. Mihaylov and Christopher J. Moore and Jonathan R. Gair and Anthony Lasenby and Gerard Gilmore},
journal= {arXiv preprint arXiv:1804.00660},
year = {2018}
}
Comments
14 pages, 12 figures