Papers › An investigation of ⁵⁶Ni shells as the source of early light curve bumps in type Ia supernovae

An investigation of ⁵⁶Ni shells as the source of early light curve bumps in type Ia supernovae

4 Jul 2020arXiv:2007.02101links table onlyarchive 2025-07-28

M. R. Magee, K. Maguire

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An excess of flux (i.e. a bump) in the early light curves of type Ia supernovae has been observed in a handful of cases. Multiple scenarios have been proposed to explain this. It has been shown that for at least one object (SN~2018oh) the excess emission observed could be the result of a large amount of ⁵⁶Ni in the outer ejecta (∼0.03~M_⊙). We present a series of model light curves and spectra for ejecta profiles containing ⁵⁶Ni shells of varying masses (0.01, 0.02, 0.03, and 0.04~M_⊙) and widths. We find that even for our lowest mass ⁵⁶Ni shell, an increase of \textgreater2 magnitudes is produced in the bolometric light curve at one day after explosion relative to models without a ⁵⁶Ni shell. We show that the colour evolution of models with a ⁵⁶Ni shell differs significantly from those without and shows a colour inversion similar to some double-detonation explosions. Spectra of our ⁵⁶Ni shell models show that strong suppression of flux between ∼3\,700 -- 4\,000~Å close to maximum light appears to be a generic feature for this class of model. Comparing our models to observations of SNe~2017cbv and 2018oh, we show that a ⁵⁶Ni shell of 0.02 -- 0.04~M_⊙ can match shapes of the early optical light curve bumps, but the colour and spectral evolution are in disagreement. This would indicate that an alternative origin for the flux excess is necessary. Based on existing explosion scenarios, producing such a ⁵⁶Ni shell in the outer ejecta as required to match the light curve shape, without the presence of additional short-lived radioactive material, may prove challenging. Given that only a small amount of ⁵⁶Ni in the outer ejecta is required to produce a bump in the light curve, such non-monotonically decreasing ⁵⁶Ni distributions in the outer ejecta must be rare, if they were to occur at all.

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