Dark matter exists in our Universe, but its nature remains mysterious. The remarkable sensitivity of the Laser Interferometer Gravitational-Wave Observatory (LIGO) may be able to solve this mystery. A good dark matter candidate is the ultralight dark photon. Because of its interaction with ordinary matter, it induces displacements on LIGO mirrors that can lead to an observable signal. In a study that bridges gravitational wave science and particle physics, we perform a direct dark matter search using data from LIGO’s first (O1) data run, as opposed to an indirect search for dark matter via its production of gravitational waves. We demonstrate an achieved sensitivity on squared coupling as ∼4×10−45, in a (1)B dark photon dark matter mass ban...
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...
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...