The GJ 436 System: Directly Determined Astrophysical Parameters of an M-Dwarf and Implications for the Transiting Hot Neptune
Abstract
The late-type dwarf GJ 436 is known to host a transiting Neptune-mass planet in a 2.6-day orbit. We present results of our interferometric measurements to directly determine the stellar diameter () and effective temperature ( K). We combine our stellar parameters with literature time-series data, which allows us to calculate physical and orbital system parameters, including GJ 436's stellar mass () and density (), planetary radius (), planetary mass (), implying a mean planetary density of . These values are generally in good agreement with previous literature estimates based on assumed stellar mass and photometric light curve fitting. Finally, we examine the expected phase curves of the hot Neptune GJ 436b, based on various assumptions concerning the efficiency of energy redistribution in the planetary atmosphere, and find that it could be constrained with {\it Spitzer} monitoring observations.
Keywords
Cite
@article{arxiv.1202.0083,
title = {The GJ 436 System: Directly Determined Astrophysical Parameters of an M-Dwarf and Implications for the Transiting Hot Neptune},
author = {Kaspar von Braun and Tabetha S. Boyajian and Stephen R. Kane and Leslie Hebb and Gerard T. van Belle and Chris Farrington and David R. Ciardi and Heather A. Knutson and Theo A. ten Brummelaar and Mercedes Lopez-Morales and Harold A. McAlister and Gail Schaefer and Stephen Ridgway and Andrew Collier Cameron and P. J. Goldfinger and Nils H. Turner and Laszlo Sturmann and Judit Sturmann},
journal= {arXiv preprint arXiv:1202.0083},
year = {2015}
}
Comments
10 pages, 4 tables, 9 figures; accepted for publication in ApJ; incorporated referee's comments and associated changes