SN 2017gmr , the SIMBAD biblio

SN 2017gmr , the SIMBAD biblio (29 results) C.D.S. - SIMBAD4 rel 1.8 - 2023.09.28CEST03:40:14


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Title First 3 Authors
2017ATel10717....1P 82 T         X         1 1 ~ Classification of AT 2017gmr/DLT17cq. PURSIMO T., ELIAS-ROSA N., DENNEFELD M., et al.
2017ATel10706....1V 165 T         X         3 2 ~ The discovery of DLT17cq/
AT 2017gmr with PROMPT.
VALENTI S., TARTAGLIA L., SAND D., et al.
2017ATel10746....1E 82           X         2 6 ~ Spectroscopic observation of 5 SN candidates. ELIAS-ROSA N., PURSIMO T., KORHONEN H., et al.
2017ApJ...851L..48Y 16       D               2 50 13 An empirical limit on the kilonova rate from the DLT40 One day cadence Supernova survey. YANG S., VALENTI S., CAPPELLARO E., et al.
2017ATel11083....1P 206 T         X         4 1 ~ OAUNI photometry of
SN2017gmr/
DLT17cq.
PEREYRA A. and RICRA J.
2019MNRAS.484.1899H viz 17       D               1 586 39 The ASAS-SN bright supernova catalogue - IV. 2017. HOLOIEN T.W.-S., BROWN J.S., VALLELY P.J., et al.
2019MNRAS.489L..69N 1618 T K A D     X C       37 9 ~ The aspherical explosion of the Type IIP
SN 2017gmr+.
NAGAO T., CIKOTA A., PATAT F., et al.
2019ApJ...885...43A viz 3388 T   A     X C       78 36 30
SN 2017gmr: an energetic Type II-P supernova with asymmetries.
ANDREWS J.E., SAND D.J., VALENTI S., et al.
2019ApJ...887....4D 17       D               1 73 ~ Carnegie Supernova Project-II: near-infrared spectroscopic diversity of Type II supernovae. DAVIS S., HSIAO E.Y., ASHALL C., et al.
2020ApJ...895L..45G 481     A D     X C       11 9 23 The value of progenitor radius measurements for explosion modeling of Type II-Plateau supernovae. GOLDBERG J.A. and BILDSTEN L.
2020ApJ...897..159P viz 45           X         1 11 14 Constraining the source of the high-velocity ejecta in Type Ia SN 2019ein. PELLEGRINO C., HOWELL D.A., SARBADHICARY S.K., et al.
2020ApJ...898...29T 44           X         1 2 ~ Comparing moment-based and Monte Carlo methods of radiation transport modeling for Type II-Plateau supernova light curves. TSANG B.T.-H., GOLDBERG J.A., BILDSTEN L., et al.
2020ApJ...900...11W viz 44           X         1 22 12 Late-time circumstellar interaction of SN 2017eaw in NGC 6946. WEIL K.E., FESEN R.A., PATNAUDE D.J., et al.
2020ApJ...902..139K viz 44           X         1 22 5 Direct evidence of two-component ejecta in Supernova 2016gkg from nebular spectroscopy. KUNCARAYAKTI H., FOLATELLI G., MAEDA K., et al.
2020A&A...642A.214K 44           X         1 21 15 Supernova explosions interacting with aspherical circumstellar material: implications for light curves, spectral line profiles, and polarization. KURFURST P., PEJCHA O. and KRTICKA J.
2020A&A...643A..35P viz 87           X         2 21 ~ First systematic high-precision survey of bright supernovae. I. Methodology for identifying early bumps. PARASKEVA E., BONANOS A.Z., LIAKOS A., et al.
2021MNRAS.503.3931T 90       S             1 88 41 Core-collapse, superluminous, and gamma-ray burst supernova host galaxy populations at low redshift: the importance of dwarf and starbursting galaxies. TAGGART K. and PERLEY D.A.
2021MNRAS.505..116U 2106 T K A D     X C F     45 16 ~ Enormous explosion energy of Type IIP
SN 2017gmr with bipolar 56Ni ejecta.
UTROBIN V.P., CHUGAI N.N., ANDREWS J.E., et al.
2021NatAs...5..544T 45           X         1 15 ~ Infrared spectropolarimetric detection of intrinsic polarization from a core-collapse supernova. TINYANONT S., MILLAR-BLANCHAER M., KASLIWAL M.M., et al.
2021MNRAS.505.3664N 358           X   F     7 14 10 Evidence for multiple origins of fast declining Type II supernovae from spectropolarimetry of SN 2013ej and SN 2017ahn. NAGAO T., PATAT F., TAUBENBERGER S., et al.
2021A&A...651A..10D 45           X         1 10 ~ Polarization signatures of a high-velocity scatterer in nebular-phase spectra of Type II supernovae. DESSART L., HILLIER D.J. and LEONARD D.C.
2021A&A...651A..19D 45           X         1 16 ~ Multiepoch VLT-FORS spectropolarimetric observations of supernova 2012aw reveal an asymmetric explosion. DESSART L., LEONARD D.C., HILLIER D.J., et al.
2022MNRAS.512.2777T 47           X         1 31 15 Progenitor and close-in circumstellar medium of type II supernova 2020fqv from high-cadence photometry and ultra-rapid UV spectroscopy. TINYANONT S., RIDDEN-HARPER R., FOLEY R.J., et al.
2022MNRAS.515..897R 112       D     X         3 122 8 Luminosity distribution of Type II supernova progenitors. RODRIGUEZ O.
2022ApJ...935...31H 233           X C F     3 27 13 Weak Mass Loss from the Red Supergiant Progenitor of the Type II SN 2021yja. HOSSEINZADEH G., KILPATRICK C.D., DONG Y., et al.
2022ApJ...936...28T 49           X         1 3 7 3D Hydrodynamics of Pre-supernova Outbursts in Convective Red Supergiant Envelopes. TSANG B.T.-H., KASEN D. and BILDSTEN L.
2022ApJ...939..105B 140       S   X         2 121 10 Seven Years of Coordinated Chandra-NuSTAR Observations of SN 2014C Unfold the Extreme Mass-loss History of Its Stellar Progenitor. BRETHAUER D., MARGUTTI R., MILISAVLJEVIC D., et al.
2023ApJ...945..107P 100             C       3 39 5 Circumstellar Medium Interaction in SN 2018lab, A Low-luminosity Type IIP Supernova Observed with TESS. PEARSON J., HOSSEINZADEH G., SAND D.J., et al.
2023ApJ...949...75V 50           X         1 9 2 The Type II-P Supernova 2019mhm and Constraints on its Progenitor System. VAZQUEZ J., KILPATRICK C.D., DIMITRIADIS G., et al.

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2023.09.28-03:40:14

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