We present a search for dark photon dark matter that could couple to gravitational-wave interferometers using data from Advanced LIGO and Virgo’s third observing run. To perform this analysis, we use two methods, one based on cross-correlation of the strain channels in the two nearly aligned LIGO detectors, and one that looks for excess power in the strain channels of the LIGO and Virgo detectors. The excess power method optimizes the Fourier transform coherence time as a function of frequency, to account for the expected signal width due to Doppler modulations. We do not find any evidence of dark photon dark matter with a mass between mA∼10−14–10−11 eV/c2, which corresponds to frequencies between 10–2000 Hz, and therefore provide upper li...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferome...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferome...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferomet...
We present a search for dark photon dark matter that could couple to gravitational-wave interferome...