78 research outputs found
Reddened, Redshifted, or Intrinsically Red? Understanding Near-Ultraviolet Colors of Type Ia Supernovae
Understanding the intrinsic colors of Type Ia supernovae (SNe Ia) is
important to their use as cosmological standard candles. Understanding the
effects of reddening and redshift on the observed colors are complicated and
dependent on the intrinsic spectrum, the filter curves, and the wavelength
dependence of reddening. We present ultraviolet and optical data of a growing
sample of SNe Ia observed with the Ultra-Violet/Optical Telescope on the Swift
spacecraft and use this sample to re-examine the near-UV (NUV) colors of SNe
Ia. We find that a small amount of reddening (E(B-V)=0.2 mag) could account for
the difference between groups designated as NUV-blue and NUV-red, and a
moderate amount of reddening (E(B-V)=0.5 mag) could account for the whole
NUV-optical differences. The reddening scenario, however, is inconsistent with
the mid-UV colors and color evolution. The effect of redshift alone only
accounts for part of the variation. Using a spectral template of SN2011fe we
can forward model the effects of redshift and reddening and directly compare
with the observed colors. We find that some SNe are consistent with reddened
versions of SN2011fe, but most SNe Ia are much redder in the uvw1-v color than
SN2011fe reddened to the same b-v color. The absolute magnitudes show that two
of five NUV-blue SNe Ia are blue because their near-UV luminosity is high, and
the other three are optically fainter. We also show that SN2011fe is not a
"normal" SN Ia in the UV, but has colors placing it at the blue extreme of our
sample
Type II supernova spectral diversity, II: spectroscopic and photometric correlations
We present an analysis of observed trends and correlations between a large range of spectral and photometric parameters of more than 100 type II supernovae (SNe II), during the photospheric phase. We define a common epoch for all SNe of 50 days post-explosion, where the majority of the sample is likely to be under similar physical conditions. Several correlation matrices are produced to search for interesting trends between more than 30 distinct light-curve and spectral properties that characterize the diversity of SNe II. Overall, SNe with higher expansion velocities are brighter, have more rapidly declining light curves, shorter plateau durations, and higher 56Ni masses. Using a larger sample than previous studies, we argue that "Pd" - the plateau duration from the transition of the initial to "plateau" decline rates to the end of the "plateau" - is a better indicator of the hydrogen envelope mass than the traditionally used optically thick phase duration (OPTd: explosion epoch to end of plateau). This argument is supported by the fact that Pd also correlates with s 3, the light-curve decline rate at late times: lower Pd values correlate with larger s 3 decline rates. Large s 3 decline rates are likely related to lower envelope masses, which enables gamma-ray escape. We also find a significant anticorrelation between Pd and s 2 (the plateau decline rate), confirming the long standing hypothesis that faster declining SNe II (SNe IIL) are the result of explosions with lower hydrogen envelope masses and therefore have shorter Pd values.Fil: Gutiérrez, Claudia P.. Universidad de Chile; Chile. University of Southampton; Reino Unido. European Southern Observatory Santiago; Chile. Millennium Institute Of Astrophysics; ChileFil: Anderson, Joseph P.. European Southern Observatory Santiago; ChileFil: Hamuy, Mario. Millennium Institute Of Astrophysics; Chile. Universidad de Chile; ChileFil: González Gaitan, Santiago. Universidad de Chile; Chile. Universidade de Lisboa; Portugal. Millennium Institute Of Astrophysics; ChileFil: Galbany, Lluis. University of Pittsburgh at Johnstown; Estados Unidos. University of Pittsburgh; Estados UnidosFil: Dessart, Luc. Universidad de Chile; ChileFil: Stritzinger, Maximilian D.. University Aarhus; DinamarcaFil: Phillips, Mark M.. Las Campanas Observatory; ChileFil: Morrell, Nidia. Las Campanas Observatory; ChileFil: Folatelli, Gaston. Universidad Nacional de La Plata. Facultad de Ciencias Astronómicas y Geofísicas; Argentin
Polarimetry of the superluminous supernova LSQ14mo: no evidence for significant deviations from spherical symmetry
We present the first polarimetric observations of a Type I superluminous
supernova (SLSN). LSQ14mo was observed with VLT/FORS2 at five different epochs
in the V band, with the observations starting before maximum light and spanning
26 days in the rest frame (z=0.256). During this period, we do not detect any
statistically significant evolution (< 2) in the Stokes parameters. The
average values we obtain, corrected for interstellar polarisation in the
Galaxy, are Q = -0.01% ( 0.15%) and U = - 0.50% ( 0.14%). This low
polarisation can be entirely due to interstellar polarisation in the SN host
galaxy. We conclude that, at least during the period of observations and at the
optical depths probed, the photosphere of LSQ14mo does not present significant
asymmetries, unlike most lower-luminosity hydrogen-poor SNe Ib/c.
Alternatively, it is possible that we may have observed LSQ14mo from a special
viewing angle. Supporting spectroscopy and photometry confirm that LSQ14mo is a
typical SLSN I. Further studies of the polarisation of Type I SLSNe are
required to determine whether the low levels of polarisation are a
characteristic of the entire class and to also study the implications for the
proposed explosion models.Comment: ApJ Letters, 4 Figures, 3 Tables. The previous version was accepted.
This version contains minor modifications to match proofs (as much as
possible
Type II Supernova Spectral Diversity. II. Spectroscopic and Photometric Correlations
We present an analysis of observed trends and correlations between a large range of spectral and photometric parameters of more than 100 type II supernovae (SNe II), during the photospheric phase. We define a common epoch for all SNe of 50 days post-explosion, where the majority of the sample is likely to be under similar physical conditions. Several correlation matrices are produced to search for interesting trends between more than 30 distinct light-curve and spectral properties that characterize the diversity of SNe II. Overall, SNe with higher expansion velocities are brighter, have more rapidly declining light curves, shorter plateau durations, and higher 56Ni masses. Using a larger sample than previous studies, we argue that "Pd" - the plateau duration from the transition of the initial to "plateau" decline rates to the end of the "plateau" - is a better indicator of the hydrogen envelope mass than the traditionally used optically thick phase duration (OPTd: explosion epoch to end of plateau). This argument is supported by the fact that Pd also correlates with s3, the light-curve decline rate at late times: lower Pd values correlate with larger s3 decline rates. Large s3 decline rates are likely related to lower envelope masses, which enables gamma-ray escape. We also find a significant anticorrelation between Pd and s2 (the plateau decline rate), confirming the long standing hypothesis that faster declining SNe II (SNe IIL) are the result of explosions with lower hydrogen envelope masses and therefore have shorter Pd values.Facultad de Ciencias Astronómicas y GeofísicasInstituto de Astrofísica de La Plat
Lightcurve and spectral modelling of the Type IIb SN 2020acat. Evidence for a strong Ni bubble effect on the diffusion time
We use the light curve and spectral synthesis code JEKYLL to calculate a set
of macroscopically mixed Type IIb supernova (SN) models, which are compared to
both previously published and new late-phase observations of SN 2020acat. The
models differ in the initial mass, the radial mixing and expansion of the
radioactive material, and the properties of the hydrogen envelope. The best
match to the photospheric and nebular spectra and lightcurves of SN 2020acat is
found for a model with an initial mass of 17 solar masses, strong radial mixing
and expansion of the radioactive material, and a 0.1 solar mass hydrogen
envelope with a low hydrogen mass-fraction of 0.27. The most interesting result
is that strong expansion of the clumps containing radioactive material seems to
be required to fit the observations of SN 2020acat both in the diffusion phase
and the nebular phase. These "Ni bubbles" are expected to expand due to heating
from radioactive decays, but the degree of expansion is poorly constrained.
Without strong expansion there is a tension between the diffusion phase and the
subsequent evolution, and models that fit the nebular phase produce a diffusion
peak that is too broad. The diffusion phase lightcurve is sensitive to the
expansion of the "Ni bubbles", as the resulting Swiss-cheese-like geometry
decreases the effective opacity and therefore the diffusion time. This effect
has not been taken into account in previous lightcurve modelling of
stripped-envelope SNe, which may lead to a systematic underestimate of their
ejecta masses. It should be emphasized, though, that JEKYLL is limited to a
geometry that is spherically symmetric on average, and large-scale asymmetries
may also play a role. The relatively high initial mass found for the progenitor
of SN 2020acat places it at the upper end of the mass distribution of Type IIb
SN progenitors, and a single star origin can not be excluded.Comment: Accepted for publication by Astronomy and Astrophysic
H-alpha Spectral diversity of type II supernovae
We present a spectroscopic analysis of the H-alpha profiles of hydrogen-rich
type II supernovae. A total of 52 type II supernovae having well sampled
optical light curves and spectral sequences were analyzed. Concentrating on the
H-alpha P-Cygni profile we measure its velocity from the FWHM of emission and
the ratio of absorption to emission (a/e) at a common epoch at the start of the
recombination phase, and search for correlations between these spectral
parameters and photometric properties of the V-band light curves. Testing the
strength of various correlations we find that a/e appears to be the dominant
spectral parameter in terms of describing the diversity in our measured
supernova properties. It is found that supernovae with smaller a/e have higher
H-alpha velocities, more rapidly declining light curves from maximum, during
the plateau and radioactive tail phase, are brighter at maximum light and have
shorter optically thick phase durations. We discuss possible explanations of
these results in terms of physical properties of type II supernovae,
speculating that the most likely parameters which influence the morphologies of
H-alpha profiles are the mass and density profile of the hydrogen envelope,
together with additional emission components due to circumstellar interaction.Comment: Accepted for publication in ApJ letters. 9 pages, 3 figures, 2 table
Optical Photometry of the Type Ia SN 1999ee and the Type Ib/c SN 1999ex in IC 5179
We present UBVRIz lightcurves of the Type Ia SN 1999ee and the Type Ib/c SN
1999ex, both located in the galaxy IC 5179. SN 1999ee has an extremely well
sampled lightcurve spanning from 10 days before Bmax through 53 days after
peak. Near maximum we find systematic differences ~0.05 mag in photometry
measured with two different telescopes, even though the photometry is reduced
to the same local standards around the supernova using the specific color terms
for each instrumental system. We use models for our bandpasses and
spectrophotometry of SN 1999ee to derive magnitude corrections (S-corrections)
and remedy this problem. This exercise demonstrates the need of accurately
characterizing the instrumental system before great photometric accuracies of
Type Ia supernovae can be claimed. It also shows that this effect can have
important astrophysical consequences since a small systematic shift of 0.02 mag
in the B-V color can introduce a 0.08 mag error in the extinction corrected
peak B magnitudes of a supernova and thus lead to biased cosmological
parameters. The data for the Type Ib/c SN 1999ex present us with the first ever
observed shock breakout of a supernova of this class. These observations show
that shock breakout occurred 18 days before Bmax and support the idea that Type
Ib/c supernovae are due to core collapse of massive stars rather than
thermonuclear disruption of white dwarfs.Comment: 55 pages, 15 figures, accepted by the Astronomical Journa
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