Constraints on dark matter annihilation and decay from the large-scale structure of the nearby Universe

Physical Review D 106:10 (2022)

Authors:

DJ Bartlett, A Kostić, H Desmond, J Jasche, G Lavaux

Abstract:

Decaying or annihilating dark matter particles could be detected through gamma-ray emission from the species they decay or annihilate into. This is usually done by modeling the flux from specific dark matter-rich objects such as the Milky Way halo, Local Group dwarfs, and nearby groups. However, these objects are expected to have significant emission from baryonic processes as well, and the analyses discard gamma-ray data over most of the sky. Here we construct full-sky templates for gamma-ray flux from the large-scale structure within ∼200 Mpc by means of a suite of constrained N-body simulations (csiborg) produced using the Bayesian Origin Reconstruction from Galaxies algorithm. Marginalizing over uncertainties in this reconstruction, small-scale structure, and parameters describing astrophysical contributions to the observed gamma-ray sky, we compare to observations from the Fermi Large Area Telescope to constrain dark matter annihilation cross sections and decay rates through a Markov chain Monte Carlo analysis. We rule out the thermal relic cross section for s-wave annihilation for all mχ7 GeV/c2 at 95% confidence if the annihilation produces gluons or quarks less massive than the bottom quark. We infer a contribution to the gamma-ray sky with the same spatial distribution as dark matter decay at 3.3σ. Although this could be due to dark matter decay via these channels with a decay rate Γ≈6×10-28 s-1, we find that a power-law spectrum of index p=-2.75-0.46+0.71, likely of baryonic origin, is preferred by the data.

The Young Supernova Experiment Data Release 1 (YSE DR1): Light Curves and Photometric Classification of 1975 Supernovae

(2022)

Authors:

PD Aleo, K Malanchev, S Sharief, DO Jones, G Narayan, RJ Foley, VA Villar, CR Angus, VF Baldassare, MJ Bustamante-Rosell, D Chatterjee, C Cold, DA Coulter, KW Davis, S Dhawan, MR Drout, A Engel, KD French, A Gagliano, C Gall, J Hjorth, ME Huber, WV Jacobson-Galán, CD Kilpatrick, D Langeroodi, KS Mandel, R Margutti, F Matasić, P McGill, JDR Pierel, E Ramirez-Ruiz, CL Ransome, C Rojas-Bravo, MR Siebert, KW Smith, KM de Soto, MC Stroh, S Tinyanont, K Taggart, SM Ward, R Wojtak, K Auchettl, PK Blanchard, TJL de Boer, BM Boyd, CM Carroll, KC Chambers, L DeMarchi, G Dimitriadis, SA Dodd, N Earl, D Farias, H Gao, S Gomez, M Grayling, C Grillo, EE Hayes, T Hung, L Izzo, N Khetan, JAP Law-Smith, N LeBaron, C-C Lin, Y Luo, EA Magnier, D Matthews, AJG O'Grady, Y-C Pan, CA Politsch, SI Raimundo, A Rest, R Ridden-Harper, A Sarangi, SJ Smartt, G Terreran, S Thorp, J Vazquez, RJ Wainscoat, Q Wang, AR Wasserman, SK Yadavalli, R Yarza, Y Zenati

Measuring the Ejecta Velocities of Type Ia Supernovae from the Pan-STARRS1 Medium Deep Survey

(2022)

Authors:

Y-C Pan, Y-S Jheng, DO Jones, I-Y Lee, RJ Foley, R Chornock, DM Scolnic, E Berger, PM Challis, M Drout, ME Huber, RP Kirshner, R Kotak, R Lunnan, G Narayan, A Rest, S Rodney, S Smartt

MIGHTEE: Deep 1.4 GHz Source Counts and the Sky Temperature Contribution of Star Forming Galaxies and Active Galactic Nuclei

(2022)

Authors:

CL Hale, IH Whittam, MJ Jarvis, PN Best, NL Thomas, I Heywood, M Prescott, N Adams, J Afonso, Fangxia An, RAA Bowler, JD Collier, RHW Cook, R Davé, BS Frank, M Glowacki, PW Hatfield, S Kolwa CC Lovell, N Maddox, L Marchetti, LK Morabito, E Murphy, I Prandoni, Z Randriamanakoto, AR Taylor

Optical studies of a bright Type Iax supernova SN 2020rea

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) 517:4 (2022) 5617-5626

Authors:

Mridweeka Singh, Kuntal Misra, Devendra K Sahu, Bhavya Ailawadhi, Anirban Dutta, D Andrew Howell, GC Anupama, K Azalee Bostroem, Jamison Burke, Raya Dastidar, Anjasha Gangopadhyay, Daichi Hiramatsu, Hyobin Im, Curtis McCully, Craig Pellegrino, Shubham Srivastav, Rishabh Singh Teja

Abstract:

ABSTRACTWe present optical photometric and spectroscopic analysis of a Type Iax supernova (SN) 2020rea situated at the brighter luminosity end of Type Iax supernovae (SNe). The light curve decline rate of SN 2020rea is Δm15(g)  = 1.31 ± 0.08 mag which is similar to SNe 2012Z and 2005hk. Modelling the pseudo-bolometric light curve with a radiation diffusion model yields a mass of 56Ni of 0.13 ± 0.01 M⊙ and an ejecta mass of 0.77$^{+0.11}_{-0.21}$ M⊙. Spectral features of SN 2020rea during the photospheric phase show good resemblance with SN 2012Z. TARDIS modelling of the early spectra of SN 2020rea reveals a dominance of Iron Group Elements (IGEs). The photospheric velocity of the Si ii line around maximum for SN 2020rea is ∼ 6500 km s−1 which is less than the measured velocity of the Fe ii line and indicates significant mixing. The observed physical properties of SN 2020rea match with the predictions of pure deflagration model of a Chandrasekhar mass C–O white dwarf. The metallicity of the host galaxy around the SN region is 12 + log(O/H)  = 8.56 ± 0.18 dex which is similar to that of SN 2012Z.