Search for ultralight bosons in Cygnus X-1 with Advanced LIGO
arXiv:1909.11267 · doi:10.1103/PhysRevD.101.063020
Abstract
Ultralight scalars, if they exist as theorized, could form clouds around rapidly rotating black holes. Such clouds are expected to emit continuous, quasimonochromatic gravitational waves that could be detected by LIGO and Virgo. Here we present results of a directed search for such signals from the Cygnus X-1 binary, using data from Advanced LIGO's second observing run. We find no evidence of gravitational waves in the 250-750 Hz band. Without incorporating existing measurements of the Cygnus X-1 black hole spin, our results disfavor boson masses in , assuming that the black hole was born years ago with a nearly-extremal spin. We then focus on a string axiverse scenario, in which self-interactions enable a cloud for high black-hole spins consistent with measurements for Cygnus X-1. In that model, we constrain the boson masses in for a decay constant GeV. Future application of our methods to other sources will yield improved constraints.
9 pages, 4 figures; In the latest version, we integrated the changes reported in the published erratum (DOI: 10.1103/PhysRevD.102.089902). A missing coefficient when comparing the numerically estimated signal strain to the strain upper limit is fixed. An alternative choice of the black hole age and the corresponding results are added