Modeling the System Parameters of 2M1533+3759: A New Longer-Period Low-Mass Eclipsing sdB+dM Binary
B.-Q. For, E.M. Green, G. Fontaine, H. Drechsel, J. S. Shaw, J. A., Dittmann, A. G. Fay, M. Francoeur, J. Laird, E. Moriyama, M. Morris, C., Rodr\'iguez-L\'opez, J. M. Sierchio, S. M. Story, A. Strom, C. Wang, S. M., Adams, D. E. Bolin, M. Eskew, P. Chayer

TL;DR
This paper reports detailed observations and modeling of a unique long-period eclipsing sdB+dM binary, revealing a low-mass sdB star that challenges existing theories and suggests diverse evolutionary pathways.
Contribution
It provides the first detailed characterization of 2M1533+3759, a long-period sdB+dM binary with an unusually low-mass sdB star, expanding understanding of sdB star formation and evolution.
Findings
The sdB primary has a mass of approximately 0.376 Msun.
The system's orbital period is 0.16177042 days, longer than typical sdB+dM binaries.
The secondary is a main sequence M5 star.
Abstract
We present new photometric and spectroscopic observations for 2M 1533+3759 (= NSVS 07826147). It has an orbital period of 0.16177042 day, significantly longer than the 2.3--3.0 hour periods of the other known eclipsing sdB+dM systems. Spectroscopic analysis of the hot primary yields Teff = 29230 +/- 125 K, log g = 5.58 +/- 0.03 and log N(He)/N(H) = -2.37 +/- 0.05. The sdB velocity amplitude is K1 = 71.1 +/- 1.0 km/s. The only detectable light contribution from the secondary is due to the surprisingly strong reflection effect. Light curve modeling produced several solutions corresponding to different values of the system mass ratio, q(M2/M1), but only one is consistent with a core helium burning star, q=0.301. The orbital inclination is 86.6 degree. The sdB primary mass is M1 = 0.376 +/- 0.055 Msun and its radius is R1 = 0.166 +/- 0.007 Rsun. 2M1533+3759 joins PG0911+456 (and possibly…
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