A unified magnetar spin-down model reproduces the bolometric light curves of 11 stripped-envelope supernovae, but several reported correlations follow from the fitting formulas rather than from independent physics.
Properties of Two Hypernovae Entering the Nebular Phase: SN 1997ef and SN 1997dq
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abstract
The two peculiar Type Ic supernovae (SNe) 1997ef and 1997dq are shown to have very similar photometric and spectral evolution in the epochs when both SNe are observed (i.e. beyond $\sim 80$ days after the explosion). The early light curves and spectra of SN 1997ef suggested that this was a ``hypernova,'' or ``SN 1998bw-like Type Ic supernova.'' The fact that the two SNe are very similar allows us to extend the time coverage of this type of event, since SN 1997dq, unlike SN 1997ef, was observed well into the nebular phase. In contrast to SN 1998bw, the spectra of these two SNe did not become fully nebular until almost one year after the explosion. During a long transition phase, lasting at least 6 months, the SNe developed nebular emission in lines of [\OI] and [\CaII], but at the same time they retained an underlying, photospheric-type spectrum, originating at very low velocities. Spectral synthesis techniques are used to model the spectrum of SN 1997dq, suggesting that it produced $\sim 0.16 \Msun$ of \Nifs, and that a significant fraction of this is located in a dense, low-velocity inner region.
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Insights from Modeling Magnetar-driven Light Curves of Stripped-envelope Supernovae
A unified magnetar spin-down model reproduces the bolometric light curves of 11 stripped-envelope supernovae, but several reported correlations follow from the fitting formulas rather than from independent physics.