Emma Chickles, Joheen Chakraborty, Kevin B. Burdge, Vik. S. Dhillon, Paul A. Draghis, Kareem El-Badry, Matthew J. Green, Aaron Householder, Sarah Hughes, Christopher Layden, Stuart P. Littlefair, James Munday, Ingrid Pelisoli, Maya S. Redden, John Tonry, Jan van Roestel, Francesco Elio Angilè, Alex J. Brown, Noel Castro Segura, Jack T. Dinsmore, Martin Dyer, G. Furesz, Michelle Gabutti, James Garbutt, Juliana Garcia-Mejia, Dan Jarvis, Mark R. Kennedy, P. Kerry, James McCormac, Geoffrey Mo, Dave Osip, Steven Parsons, Eleanor Pike, John J. Piotrowski, Roger W. Romani, David Sahman, Rob Simcoe
Abstract We report the discovery of ATLAS J101342.5−451656.8 (hereafter ATLAS J1013−4516), an 8.56 minute orbital-period mass-transferring AM Canum Venaticorum (AM CVn) binary with a mean Gaia magnitude of G = 19.51, identified via periodic variability in light curves from the Asteroid Terrestrial-impact Last Alert System (ATLAS) of Gaia white dwarf candidates. Follow-up with the Large Lenslet Array Magellan Spectrograph shows a helium-dominated accretion disk, and high-speed ULTRACAM photometry reveals pronounced primary and secondary eclipses. We construct a decade-long timing baseline leveraging light curves from the ATLAS and Gaia surveys, as well as the high-speed imagers ULTRACAM on the New Energy Telescope and proto-Lightspeed on the Magellan Clay telescope. From this timing baseline, we measure an orbital period derivative of P ̇ = − 1.60 ± 0.07 × 1 0 − 12 s s −1 . Interpreted in the context of stable mass transfer, the magnitude and sign of P ̇ indicate that the orbital evolution is governed by the interplay between gravitational-wave-driven angular-momentum losses and mass transfer, directly probing the donor’s structural response to mass loss. We constrain the accretor and donor mass based on stable mass-transfer arguments assuming angular-momentum loss dominated by gravitational-wave emission, allowing us to infer the characteristic gravitational wave strain of the binary for future space-based GW observatories such as the Laser Interferometer Space Antenna (LISA). We predict a characteristic strain corresponding to a 4 yr LISA signal-to-noise ratio ≳10, establishing ATLAS J1013−4516 as a strong prospective LISA source that will probe long-term orbital evolution in the mass-transferring regime.