Skip to main navigation Skip to search Skip to main content

What determines the γ-ray luminosities of classical novae?

  • Peter Craig
  • , Elias Aydi
  • , Laura Chomiuk
  • , Ashley Stone
  • , Jay Strader
  • , Atticus Chong
  • , Kwan Lok Li
  • , Jhih Ling Fan
  • , Arash Bahramian
  • , David A.H. Buckley
  • , Luca Izzo
  • , Adam Kawash
  • , Brian D. Metzger
  • , Koji Mukai
  • , Justin D. Linford
  • , Marina Orio
  • , J. L. Sokoloski
  • , Kirill V. Sokolovsky
  • , Evangelia Tremou
  • , Frederick M. Walter
  • Joan Guarro Fló, Christophe Boussin, Stéphane Charbonnel, Olivier Garde, Konstantin Belyakov, Libert A.G. Monard, Franz Josef Hambsch, Neil Thomas
  • Michigan State University
  • Texas Tech University
  • West Virginia University
  • National Cheng Kung University
  • International Centre for Radio Astronomy Research
  • South African Astronomical Observatory
  • Osservatorio Astronomico di Capodimonte
  • Columbia University
  • Simons Foundation
  • University of Maryland, Baltimore County
  • NASA Goddard Space Flight Center
  • National Science Foundation
  • Astronomical Observatory of Padua
  • University of Illinois at Urbana-Champaign
  • Piera Remote Observatory
  • Observatoire de l'Eridan et de la Chevelure de Bérénice
  • Durtal Observatory
  • Observatoire de la Tourbière
  • American Association of Variable Star Observers
  • Parallax LTD
  • Bronberg Observatory
  • Klein Karoo Observatory (Formerly Bronberg)
  • Vereniging Voor Sterrenkunde (VVS)
  • Bundesdeutsche Arbeitsgemeinschaft für Veränderliche Sterne
  • Groupe Européen d'Observations Stellaires (GEOS)
  • United States Air Force Academy

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Classical novae in the Milky Way have now been well-established as high-energy GeV -ray sources. In novae with main-sequence companions, this emission is believed to result from shocks internal to the nova ejecta, as a later fast wind collides with an earlier slow outflow. To test this model and constrain the -ray production mechanism, we present a systematic study of a sample of recent Galactic novae, comparing their -ray properties (-ray luminosity and duration) with their outflow velocities, peak V-band magnitudes, and the decline times of their optical light curves (). We uniformly estimate distances in a luminosity-independent manner, using spectroscopic reddening estimates combined with three-dimensional Galactic dust maps. Across our sample, -ray luminosities ($]]>100 MeV) vary by three orders of magnitude, spanning erg s. Novae with larger velocity of the fast outflow (or larger differential between the fast and slow outflow) have larger -ray luminosities, but are detectable for a shorter duration. The optical and -ray fluxes are correlated, consistent with substantial thermal emission in the optical from shock-heated gas. Across six novae with -ray and infrared light curves, evidence for dust formation appears soon after the end of the detected -ray emission. Dusty and non-dusty novae appear to have similar -ray luminosities, though novae that have more material processed by the shocks may be more likely to form dust. We find that the properties of the -ray emission in novae depend heavily on the ejecta properties, and are consistent with expectations for internal shocks.

Original languageEnglish
Article numberstaf2270
JournalMonthly Notices of the Royal Astronomical Society
Volume546
Issue number3
DOIs
StatePublished - Mar 1 2026

Keywords

  • gamma-rays: stars
  • novae, cataclysmic variables
  • techniques: spectroscopic
  • white dwarfs

Fingerprint

Dive into the research topics of 'What determines the γ-ray luminosities of classical novae?'. Together they form a unique fingerprint.

Cite this