English

Challenging Classical Paradigms: Recurrent Nova M31N 2017-01e, a BeWD system in M31?

Solar and Stellar Astrophysics 2025-08-05 v1 High Energy Astrophysical Phenomena

Abstract

M31N 2017-01e is the second-fastest recurrent nova known, with a recurrence period of 2.5 years in the Andromeda Galaxy (M31). This system exhibits a unique combination of properties: a low outburst amplitude (3\sim3 magnitude), starkly contrasting with known recurrent novae (typically 6\geq 6 magnitudes), and a very fast evolution (t25t_{2}\sim 5 days). Its position coincides with a bright variable source (MV4.2,BV=0.042\mathrm{{M_V \sim -4.2,\, B-V= 0.042}}) displaying a 14.3 day photometric modulation, which has been suggested as the likely progenitor. We present a multi-wavelength analysis of optical and UV data spanning quiescence and the 2019 and 2024 outbursts. Archival high-resolution imaging reveals two nearby faint sources within 55^{\prime\prime} of the proposed nova system, which we identified as unrelated field stars. Color analysis and spectral energy distribution fitting suggest the progenitor is likely an early-type star. Combined with archival spectra consistent with a B-type star with Hα\alpha in emission, this points to the quiescent counterpart being a Be star with a circumstellar disc. We propose that M31N 2017-01e arises from a rare Be-WD binary, where the WD accretes from the decretion disk of its companion, explaining its rapid recurrence, low-amplitude outbursts, and unusual quiescent luminosity and color. This analysis highlights M31N 2017-01e as a compelling outlier among recurrent novae, suggesting a distinct accretion mechanism and evolutionary path that challenges the prevailing paradigm.

Keywords

Cite

@article{arxiv.2508.02227,
  title  = {Challenging Classical Paradigms: Recurrent Nova M31N 2017-01e, a BeWD system in M31?},
  author = {Shatakshi Chamoli and Judhajeet Basu and Sudhanshu Barway and G. C. Anupama and Vishwajeet Swain and Varun Bhalero},
  journal= {arXiv preprint arXiv:2508.02227},
  year   = {2025}
}

Comments

14 pages, 5 figures, 5 tables. Accepted for publication in The Astrophysical Journal

R2 v1 2026-07-01T04:32:57.708Z