English

OGLE-2019-BLG-0960Lb: The Smallest Microlensing Planet

Earth and Planetary Astrophysics 2021-10-13 v1 Astrophysics of Galaxies Solar and Stellar Astrophysics

Abstract

We report the analysis of OGLE-2019-BLG-0960, which contains the smallest mass-ratio microlensing planet found to date (q = 1.2--1.6 x 10^{-5} at 1-sigma). Although there is substantial uncertainty in the satellite parallax measured by Spitzer, the measurement of the annual parallax effect combined with the finite source effect allows us to determine the mass of the host star (M_L = 0.3--0.6 M_Sun), the mass of its planet (m_p = 1.4--3.1 M_Earth), the projected separation between the host and planet (a_perp = 1.2--2.3 au), and the distance to the lens system (D_L = 0.6--1.2 kpc). The lens is plausibly the blend, which could be checked with adaptive optics observations. As the smallest planet clearly below the break in the mass-ratio function (Suzuki et al. 2016; Jung et al. 2019), it demonstrates that current experiments are powerful enough to robustly measure the slope of the mass-ratio function below that break. We find that the cross-section for detecting small planets is maximized for planets with separations just outside of the boundary for resonant caustics and that sensitivity to such planets can be maximized by intensively monitoring events whenever they are magnified by a factor A > 5. Finally, an empirical investigation demonstrates that most planets showing a degeneracy between (s > 1) and (s < 1) solutions are not in the regime (|log s| >> 0) for which the "close"/"wide" degeneracy was derived. This investigation suggests a link between the "close"/"wide" and "inner/outer" degeneracies and also that the symmetry in the lens equation goes much deeper than symmetries uncovered for the limiting cases.

Keywords

Cite

@article{arxiv.2101.04696,
  title  = {OGLE-2019-BLG-0960Lb: The Smallest Microlensing Planet},
  author = {Jennifer C. Yee and Weicheng Zang and Andrzej Udalski and Yoon-Hyun Ryu and Jonathan Green and Steve Hennerley and Andrew Marmont and Takahiro Sumi and Shude Mao and Mariusz Gromadzki and Przemek Mróz and Jan Skowron and Radoslaw Poleski and Michał K. Szymański and Igor Soszyński and Paweł Pietrukowicz and Szymon Kozłowski and Krzysztof Ulaczyk and Krzysztof A. Rybicki and Patryk Iwanek and Marcin Wrona and Michael D. Albrow and Sun-Ju Chung and Andrew Gould and Cheongho Han and Kyu-Ha Hwang and Youn Kil Jung and Hyoun-Woo Kim and In-Gu Shin and Yossi Shvartzvald and Sang-Mok Cha and Dong-Jin Kim and Seung-Lee Kim and Chung-Uk Lee and Dong-Joo Lee and Yongseok Lee and Byeong-Gon Park and Richard W. Pogge and Etienne Bachelet and Grant Christie and Markus P. G. Hundertmark and Dan Maoz and Jennie McCormick and Tim Natusch and Matthew T. Penny and Rachel A. Street and Yiannis Tsapras and Charles A. Beichman and Geoffery Bryden and Sebastiano Calchi Novati and Sean Carey and B. Scott Gaudi and Calen B. Henderson and Samson Johnson and Wei Zhu and Ian A. Bond and Fumio Abe and Richard Barry and David P. Bennett and Aparna Bhattacharya and Martin Donachie and Hirosane Fujii and Akihiko Fukui and Yuki Hirao and Stela Ishitani Silva and Yoshitaka Itow and Rintaro Kirikawa and Iona Kondo and Naoki Koshimoto and Man Cheung Alex Li and Yutaka Matsubara and Yasushi Muraki and Shota Miyazaki and Greg Olmschenk and Clément Ranc and Nicholas J. Rattenbury and Yuki Satoh and Hikaru Shoji and Daisuke Suzuki and Yuzuru Tanaka and Paul J. Tristram and Tsubasa Yamawaki and Atsunori Yonehara},
  journal= {arXiv preprint arXiv:2101.04696},
  year   = {2021}
}

Comments

32 pages, 15 figures, 5 tables. Submitted to AAS Journals

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