The late bolometric light curves of type Ia supernovae, when measured accurately over several years, show an exponential decay with a 56d half-life over a drop in luminosity of 8 magnitudes (10 half-lives). The late-time light curve is thought to be governed by the decay of Co{sup 56}, whose 77d half-life must then be modified to account for the observed decay time. Two mechanisms, both relying upon the positron fraction of the Co{sup 56} decay, have been proposed to explain this modification. One explanation requires a large amount of emission at infra-red wavelengths where it would not be detected. The other explanation has proposed a progressive transparency or leakage of the high energy positrons (Colgate, Petschek and Kriese, 1980). Fo...
International audienceThe increase in the number of Type Ia supernovae (SNe Ia) has demonstrated tha...
20 pages, 10 figures, accepted to MNRASWe present a sample of normal type Ia supernovae from the Nea...
We present late-time optical $R$-band imaging data from the Palomar Transient Factory (PTF) for the ...
International audienceWhile Chandrasekhar-mass (M_Ch) models with a low ^56Ni yield can match the pe...
The faster light-curve evolution of low-luminosity Type Ia supernovae (SNe Ia) suggests that they co...
Seitenzahl et al. have predicted that roughly three years after its explosion, the light we receive ...
Type Ia supernovae (SNe Ia), the thermonuclear explosion of a white dwarf, were once considered stan...
Type Ia supernovae (SNe Ia), the thermonuclear explosion of a white dwarf, were once considered stan...
The use of Type Ia supernovae as cosmological tools has reinforced the need to better understand the...
International audienceThe faster light-curve evolution of low-luminosity Type Ia supernovae (SNe Ia)...
Seitenzahl et al. have predicted that roughly three years after its explosion, the light we receive ...
The light curves of Type Ia supernovae (SNe Ia) are powered by the radioactive decay of 56Ni to 56Co...
25 pages, 16 figures; accepted for publication in MNRASThe delayed-detonation explosion mechanism ap...
International audienceThe increase in the number of Type Ia supernovae (SNe Ia) has demonstrated tha...
20 pages, 10 figures, accepted to MNRASWe present a sample of normal type Ia supernovae from the Nea...
We present late-time optical $R$-band imaging data from the Palomar Transient Factory (PTF) for the ...
International audienceWhile Chandrasekhar-mass (M_Ch) models with a low ^56Ni yield can match the pe...
The faster light-curve evolution of low-luminosity Type Ia supernovae (SNe Ia) suggests that they co...
Seitenzahl et al. have predicted that roughly three years after its explosion, the light we receive ...
Type Ia supernovae (SNe Ia), the thermonuclear explosion of a white dwarf, were once considered stan...
Type Ia supernovae (SNe Ia), the thermonuclear explosion of a white dwarf, were once considered stan...
The use of Type Ia supernovae as cosmological tools has reinforced the need to better understand the...
International audienceThe faster light-curve evolution of low-luminosity Type Ia supernovae (SNe Ia)...
Seitenzahl et al. have predicted that roughly three years after its explosion, the light we receive ...
The light curves of Type Ia supernovae (SNe Ia) are powered by the radioactive decay of 56Ni to 56Co...
25 pages, 16 figures; accepted for publication in MNRASThe delayed-detonation explosion mechanism ap...
International audienceThe increase in the number of Type Ia supernovae (SNe Ia) has demonstrated tha...
20 pages, 10 figures, accepted to MNRASWe present a sample of normal type Ia supernovae from the Nea...
We present late-time optical $R$-band imaging data from the Palomar Transient Factory (PTF) for the ...