English

"Auxiliary" Science with the WFIRST Microlensing Survey

Solar and Stellar Astrophysics 2019-03-22 v1 Earth and Planetary Astrophysics Astrophysics of Galaxies Instrumentation and Methods for Astrophysics

Abstract

The Wide Field Infrared Survey Telescope (WFIRST) will monitor 2\sim 2 deg2^2 toward the Galactic bulge in a wide (12 μ\sim 1-2~\mum) W149 filter at 15-minute cadence with exposure times of \sim50s for 6 seasons of 72 days each, for a total \sim41,000 exposures taken over \sim432 days, spread over the 5-year prime mission. This will be one of the deepest exposures of the sky ever taken, reaching a photon-noise photometric precision of 0.01 mag per exposure and collecting a total of 109\sim 10^9 photons over the course of the survey for a W149AB21_{\rm AB}\sim 21 star. Of order 4×1074 \times 10^7 stars will be monitored with W149AB_{\rm AB}<21, and 108^8 stars with W145AB_{\rm AB}<23. The WFIRST microlensing survey will detect \sim54,000 microlensing events, of which roughly 1% (\sim500) will be due to isolated black holes, and \sim3% (\sim1600) will be due to isolated neutron stars. It will be sensitive to (effectively) isolated compact objects with masses as low as the mass of Pluto, thereby enabling a measurement of the compact object mass function over 10 orders of magnitude. Assuming photon-noise limited precision, it will detect 105\sim 10^5 transiting planets with sizes as small as 2 R\sim 2~R_\oplus, perform asteroseismology of 106\sim 10^6 giant stars, measure the proper motions to 0.3%\sim 0.3\% and parallaxes to 10%\sim 10\% for the 6×106\sim 6 \times 10^6 disk and bulge stars in the survey area, and directly detect 5×103\sim 5 \times 10^3 Trans-Neptunian objects (TNOs) with diameters down to 10\sim 10 km, as well as detect 103\sim 10^3 occulations of stars by TNOs during the survey. All of this science will completely serendipitous, i.e., it will not require modifications of the WFIRST optimal microlensing survey design. Allowing for some minor deviation from the optimal design, such as monitoring the Galactic center, would enable an even broader range of transformational science.

Keywords

Cite

@article{arxiv.1903.08986,
  title  = {"Auxiliary" Science with the WFIRST Microlensing Survey},
  author = {B. Scott Gaudi and Rachel Akeson and Jay Anderson and Etienne Bachelet and David P. Bennett and Aparna Bhattacharya and Valerio Bozza and Sebastiano Calchi Novati and Calen B. Henderson and Samson A. Johnson and Jeffrey Kruk and Jessica R. Lu and Shude Mao and Benjamin T. Montet and David M. Nataf and Matthew T. Penny and Radoslaw Poleski and Clément Ranc and Kailash Sahu and Yossi Shvartzvald and David N. Spergel and Daisuke Suzuki and Keivan G. Stassun and Rachel A. Street},
  journal= {arXiv preprint arXiv:1903.08986},
  year   = {2019}
}

Comments

9 pages, 3 figures, submitted to the Astro2020 Science White Paper call. This white paper draws heavily from Chapter 2.5 of Spergel et al. 2015 (arXiv:1503.03757), which was written by the lead author of this white paper

R2 v1 2026-06-23T08:15:00.274Z