Simulations show dust survival after a supernova depends strongly on circumstellar shell geometry and eruption-to-explosion timing, with short gaps preserving 20-75% of erupted dust while long gaps and bipolar shells destroy most of it.
Long Plateau Doth So: How Internal Heating Sources Affect Hydrogen-Rich Supernova Light Curves
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abstract
Some hydrogen-rich core-collapse supernovae (type IIP SNe) exhibit evidence for a sustained energy source powering their light curves, resulting in a brighter and/or longer-lasting hydrogen-recombination plateau phase. We present a semi-analytic SNIIP light curve model that accounts for the effects of an arbitrary internal heating source, considering as special cases $^{56}$Ni/$^{56}$Co decay, a central engine (millisecond magnetar or accreting compact object), and shock interaction with a dense circumstellar disk. While a sustained internal power source can boost the plateau luminosity commensurate with the magnitude of the power, the duration of the recombination plateau can typically be increased by at most a factor $\sim 2-3$ compared to the zero-heating case. For a given ejecta mass and initial kinetic energy, the longest plateau duration is achieved for a constant heating rate at the highest magnitude that does not appreciably accelerate the ejecta. This finding has implications for the minimum ejecta mass required to explain particularly long-lasting supernovae such as iPTF14hls, and for confidently identifying rare explosions of the most-massive hydrogen-rich (e.g. population III) stars. We present a number of analytic estimates which elucidate the key features of the detailed model.
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The bright, dusty aftermath of giant eruptions & H-rich supernovae. Late interaction of supernova shocks & dusty circumstellar shells
Simulations show dust survival after a supernova depends strongly on circumstellar shell geometry and eruption-to-explosion timing, with short gaps preserving 20-75% of erupted dust while long gaps and bipolar shells destroy most of it.