TY - JOUR
T1 - What determines the γ-ray luminosities of classical novae?
AU - Craig, Peter
AU - Aydi, Elias
AU - Chomiuk, Laura
AU - Stone, Ashley
AU - Strader, Jay
AU - Chong, Atticus
AU - Li, Kwan Lok
AU - Fan, Jhih Ling
AU - Bahramian, Arash
AU - Buckley, David A.H.
AU - Izzo, Luca
AU - Kawash, Adam
AU - Metzger, Brian D.
AU - Mukai, Koji
AU - Linford, Justin D.
AU - Orio, Marina
AU - Sokoloski, J. L.
AU - Sokolovsky, Kirill V.
AU - Tremou, Evangelia
AU - Walter, Frederick M.
AU - Fló, Joan Guarro
AU - Boussin, Christophe
AU - Charbonnel, Stéphane
AU - Garde, Olivier
AU - Belyakov, Konstantin
AU - Monard, Libert A.G.
AU - Hambsch, Franz Josef
AU - Thomas, Neil
N1 - Publisher Copyright:
© 2025 The Author(s). Published by Oxford University Press on behalf of Royal Astronomical Society.
PY - 2026/3/1
Y1 - 2026/3/1
N2 - 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 ($]]>100 MeV) vary by three orders of magnitude, spanning erg s. Novae with larger velocity of the fast outflow (or larger differential between the fast and slow outflow) have larger -ray luminosities, but are detectable for a shorter duration. The optical and -ray fluxes are correlated, consistent with substantial thermal emission in the optical from shock-heated gas. Across six novae with -ray and infrared light curves, evidence for dust formation appears soon after the end of the detected -ray emission. Dusty and non-dusty novae appear to have similar -ray luminosities, though novae that have more material processed by the shocks may be more likely to form dust. We find that the properties of the -ray emission in novae depend heavily on the ejecta properties, and are consistent with expectations for internal shocks.
AB - Classical novae in the Milky Way have now been well-established as high-energy GeV -ray sources. In novae with main-sequence companions, this emission is believed to result from shocks internal to the nova ejecta, as a later fast wind collides with an earlier slow outflow. To test this model and constrain the -ray production mechanism, we present a systematic study of a sample of recent Galactic novae, comparing their -ray properties (-ray luminosity and duration) with their outflow velocities, peak V-band magnitudes, and the decline times of their optical light curves (). We uniformly estimate distances in a luminosity-independent manner, using spectroscopic reddening estimates combined with three-dimensional Galactic dust maps. Across our sample, -ray luminosities ($]]>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.
KW - gamma-rays: stars
KW - novae, cataclysmic variables
KW - techniques: spectroscopic
KW - white dwarfs
UR - https://www.scopus.com/pages/publications/105029413227
U2 - 10.1093/mnras/staf2270
DO - 10.1093/mnras/staf2270
M3 - Article
AN - SCOPUS:105029413227
SN - 0035-8711
VL - 546
JO - Monthly Notices of the Royal Astronomical Society
JF - Monthly Notices of the Royal Astronomical Society
IS - 3
M1 - staf2270
ER -