English

Astrometric Microlensing by Primordial Black Holes with The Roman Space Telescope

Astrophysics of Galaxies 2024-03-12 v2

Abstract

Primordial Black Holes (PBHs) could explain some fraction of dark matter and shed light on many areas of early-universe physics. Despite over half a century of research interest, a PBH population has so far eluded detection. The most competitive constraints on the fraction of dark matter comprised of PBHs (fDMf_{\rm DM}) in the (10910)M(10^{-9}-10)M_{\odot} mass-ranges come from photometric microlensing and bound fDM102101f_{\rm DM}\lesssim10^{-2}-10^{-1}. With the advent of the Roman Space Telescope with its sub-milliarcsecond (mas) astrometric capabilities and its planned Galactic Bulge Time Domain Survey (GBTDS), detecting astrometric microlensing signatures will become routine. Compared with photometric microlensing, astrometric microlensing signals are sensitive to different lens masses-distance configurations and contains different information, making it a complimentary lensing probe. At sub-mas astrometric precision, astrometric microlensing signals are typically detectable at larger lens-source separations than photometric signals, suggesting a microlensing detection channel of pure astrometric events. We use a Galactic simulation to predict the number of detectable microlensing events during the GBTDS via this pure astrometric microlensing channel. Assuming an absolute astrometric precision floor for bright stars of 0.1 mas for the GBTDS, we find that the number of detectable events peaks at 103fDM\approx 10^{3} f_{\rm DM} for a population of 1M 1 M_{\odot} PBHs and tapers to 10fDM\approx 10f_{\rm DM} and 100fDM\approx 100f_{\rm DM} at 104M10^{-4}M_{\odot} and 103M10^{3}M_{\odot}, respectively. Accounting for the distinguishability of PBHs from Stellar lenses, we conclude the GBTDS will be sensitive to a PBH population at fDMf_{\rm DM} down to 101103\approx10^{-1}-10^{-3} for (101102)M(10^{-1}-10^{2})M_{\odot} likely yielding novel PBH constraints.

Keywords

Cite

@article{arxiv.2312.13249,
  title  = {Astrometric Microlensing by Primordial Black Holes with The Roman Space Telescope},
  author = {James Fardeen and Peter McGill and Scott E. Perkins and William A. Dawson and Natasha S. Abrams and Jessica R. Lu and Ming-Feng Ho and Simeon Bird},
  journal= {arXiv preprint arXiv:2312.13249},
  year   = {2024}
}

Comments

21 pages, 11 figures, accepted to AAS Journals