English

Masses and Distances of Planetary Microlens Systems with High Angular Resolution Imaging

Earth and Planetary Astrophysics 2019-03-21 v1 Instrumentation and Methods for Astrophysics

Abstract

Microlensing is the only method that can detect and measure mass of wide orbit, low mass, solar system analog exoplanets. Mass measurements of such planets would yield massive science on planet formation, exoplanet demographics, free floating planets, planet frequencies towards the galaxy. High res follow-up observations of past microlens targets provide a mass measurement of microlens planets and hosts at an uncertainty of <20%. This will be primary method for mass measurement with WFIRST. We advocate for the fact that high resolution observations with AO, HST and JWST(in future) remain necessary in coming decade to develop the methods, to determine the field and filter selection, understand the systematics and to develop a robust pipeline to release high quality data products from WFIRST microlensing survey such that the astronomy community can promptly engage in the science. We also support future high res obs with US ELTs with advanced Laser AO systems in context of enhancing the science return of WFIRST microlensing survey. We endorse the 2018 Exoplanet Science Strategy report published by the National Academy. This white paper extends and complements the material presented therein. In particular, this white paper supports the recommendation of the National Academy Exoplanet Science Strategy report that: NASA should launch WFIRST to conduct its microlensing survey of distant planets and to demonstrate the technique of coronagraphic spectroscopy on exoplanet targets. This white paper also supports to the finding from that report which states "A number of activities, including precursor and concurrent observations using ground- and space-based facilities, would optimize the scientific yield of the WFIRST microlensing survey."

Keywords

Cite

@article{arxiv.1903.08185,
  title  = {Masses and Distances of Planetary Microlens Systems with High Angular Resolution Imaging},
  author = {Aparna Bhattacharya and Rachel Akeson and Jay Anderson and Etienne Bachelet and Jean-Phillipe Beaulieu and Andrea Bellini and David P. Bennett and Alan Boss and Valerio Bozza and Geoffrey Bryden and Arnaud Cassan and David R. Ciardi and Martin Dominik and Akihiko Fukui and B. Scott Gaudi and Calen B. Henderson and Savannah Jacklin and Samson A. Johnson and Naoki Koshimoto and Shude Mao and Dimitri Mawet and Henry Ngo and Matthew T. Penny and Radoslaw Poleski and Clément Ranc and Sarah Dodgson-Robinson and Leslie A. Rogers and Kailash C. Sahu and Sara Seager and R. A. Street and Daisuke Suzuki and Judit Szulagyi and Yiannis Tsapras and Andrzej Udalski and Philip Yock and Neil Zimmerman},
  journal= {arXiv preprint arXiv:1903.08185},
  year   = {2019}
}

Comments

8 pages, 2 figures, Astro2020 decadal submission