A terrestrial-mass rogue planet candidate detected in the shortest-timescale microlensing event
Abstract
Some low-mass planets are expected to be ejected from their parent planetary systems during early stages of planetary system formation. According to planet-formation theories, such as the core accretion theory, typical masses of ejected planets should be between 0.3 and 1.0 . Although in practice such objects do not emit any light, they may be detected using gravitational microlensing via their light-bending gravity. Microlensing events due to terrestrial-mass rogue planets are expected to have extremely small angular Einstein radii (< 1 uas) and extremely short timescales (< 0.1 day). Here, we present the discovery of the shortest-timescale microlensing event, OGLE-2016-BLG-1928, identified to date (). Thanks to the detection of finite-source effects in the light curve of the event, we were able to measure the angular Einstein radius of the lens uas, making the event the most extreme short-timescale microlens discovered to date. Depending on its unknown distance, the lens may be a Mars- to Earth-mass object, with the former possibility favored by the Gaia proper motion measurement of the source. The planet may be orbiting a star but we rule out the presence of stellar companions up to the projected distance of 8.0 au from the planet. Our discovery demonstrates that terrestrial-mass free-floating planets can be detected and characterized using microlensing.
Keywords
Cite
@article{arxiv.2009.12377,
title = {A terrestrial-mass rogue planet candidate detected in the shortest-timescale microlensing event},
author = {P. Mroz and R. Poleski and A. Gould and A. Udalski and T. Sumi and M. K. Szymanski and I. Soszynski and P. Pietrukowicz and S. Kozlowski and J. Skowron and K. Ulaczyk and M. D. Albrow and S. -J. Chung and C. Han and K. -H. Hwang and Y. K. Jung and H. -W. Kim and Y. -H. Ryu and I. -G. Shin and Y. Shvartzvald and J. C. Yee and W. Zang and S. -M. Cha and D. -J. Kim and S. -L. Kim and C. -U. Lee and D. -J. Lee and Y. Lee and B. -G. Park and R. W. Pogge},
journal= {arXiv preprint arXiv:2009.12377},
year = {2020}
}
Comments
accepted for publication in ApJ Letters, minor changes