Astrophysical probes of inelastic dark matter with a light mediator

被引:14
作者
Alvarez, Gerardo [1 ]
Yu, Hai-Bo [1 ]
机构
[1] Univ Calif Riverside, Dept Phys & Astron, Riverside, CA 92521 USA
关键词
COSMOLOGICAL SIMULATIONS; SELF-INTERACTIONS;
D O I
10.1103/PhysRevD.101.043002
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We consider an inelastic dark matter model, in which a fermion is charged under a broken U(1) gauge symmetry, and introduce a tiny Majorana mass term to split the fermion into two states with the light one being a dark matter candidate. If the gauge boson is light, it can mediate both elastic and inelastic dark matter self-interactions in dark halos, leading to observational consequences. Using a numerical technique based on partial wave analysis, we accurately calculate the elastic and inelastic self-scattering cross sections. We assume a thermal freeze-out scenario and fix the gauge coupling constant using the relic density constraint. Then, we focus on six benchmark masses of dark matter, covering a wide range from 10 MeV to 160 GeV and map parameter regions where the elastic scattering cross section per unit mass is within 1 cm(2)/g - 5 cm(2)/g, favored to solve small-scale issues of cold dark matter. If the heavy state can decay to the light state and a massless species, the inelastic up-scattering process can cool the halo and lead to core collapse. Taking galaxies with evidence of dark matter density cores, we further derive constraints on the parameter space. For dark matter masses below 10 GeV, the mass splitting must be large enough to forbid up scattering in the dwarf halo for evading the core-collapse constraint; while for higher masses, the up-scattering process can still be allowed. Our results show astrophysical observations can provide powerful tests for dark matter models with large elastic and inelastic self-interactions.
引用
收藏
页数:11
相关论文
共 66 条
[1]   Planck 2013 results. XVI. Cosmological parameters [J].
Ade, P. A. R. ;
Aghanim, N. ;
Armitage-Caplan, C. ;
Arnaud, M. ;
Ashdown, M. ;
Atrio-Barandela, F. ;
Aumont, J. ;
Baccigalupi, C. ;
Banday, A. J. ;
Barreiro, R. B. ;
Bartlett, J. G. ;
Battaner, E. ;
Benabed, K. ;
Benoit, A. ;
Benoit-Levy, A. ;
Bernard, J. -P. ;
Bersanelli, M. ;
Bielewicz, P. ;
Bobin, J. ;
Bock, J. J. ;
Bonaldi, A. ;
Bond, J. R. ;
Borrill, J. ;
Bouchet, F. R. ;
Bridges, M. ;
Bucher, M. ;
Burigana, C. ;
Butler, R. C. ;
Calabrese, E. ;
Cappellini, B. ;
Cardoso, J. -F. ;
Catalano, A. ;
Challinor, A. ;
Chamballu, A. ;
Chary, R. -R. ;
Chen, X. ;
Chiang, H. C. ;
Chiang, L. -Y ;
Christensen, P. R. ;
Church, S. ;
Clements, D. L. ;
Colombi, S. ;
Colombo, L. P. L. ;
Couchot, F. ;
Coulais, A. ;
Crill, B. P. ;
Curto, A. ;
Cuttaia, F. ;
Danese, L. ;
Davies, R. D. .
ASTRONOMY & ASTROPHYSICS, 2014, 571
[2]   Results of a Search for Sub-GeV Dark Matter Using 2013 LUX Data [J].
Akerib, D. S. ;
Alsum, S. ;
Araujo, H. M. ;
Bai, X. ;
Balajthy, J. ;
Beltrame, P. ;
Bernard, E. P. ;
Bernstein, A. ;
Biesiadzinski, T. P. ;
Boulton, E. M. ;
Boxer, B. ;
Bras, P. ;
Burdin, S. ;
Byram, D. ;
Carmona-Benitez, M. C. ;
Chan, C. ;
Cutter, J. E. ;
Davison, T. J. R. ;
Druszkiewicz, E. ;
Fallon, S. R. ;
Fan, A. ;
Fiorucci, S. ;
Gaitskell, R. J. ;
Genovesi, J. ;
Ghag, C. ;
Gilchriese, M. G. D. ;
Gwilliam, C. ;
Hall, C. R. ;
Haselschwardt, S. J. ;
Hertel, S. A. ;
Hogan, D. P. ;
Horn, M. ;
Huang, D. Q. ;
Ignarra, C. M. ;
Jacobsen, R. G. ;
Jahangir, O. ;
Ji, W. ;
Kamdin, K. ;
Kazkaz, K. ;
Khaitan, D. ;
Knoche, R. ;
Korolkova, E., V ;
Kravitz, S. ;
Kudryavtsev, V. A. ;
Lenardo, B. G. ;
Lesko, K. T. ;
Liao, J. ;
Lin, J. ;
Lindote, A. ;
Lopes, M., I .
PHYSICAL REVIEW LETTERS, 2019, 122 (13)
[3]   Light Dark Matter Search with Ionization Signals in XENON1T [J].
Aprile, E. ;
Aalbers, J. ;
Agostini, F. ;
Alfonsi, M. ;
Althueser, L. ;
Amaro, F. D. ;
Antochi, V. C. ;
Angelino, E. ;
Arneodo, F. ;
Barge, D. ;
Baudis, L. ;
Bauermeister, B. ;
Bellagamba, L. ;
Benabderrahmane, M. L. ;
Berger, T. ;
Breur, P. A. ;
Brown, A. ;
Brown, E. ;
Bruenner, S. ;
Bruno, G. ;
Budnik, R. ;
Capelli, C. ;
Cardoso, J. M. R. ;
Cichon, D. ;
Coderre, D. ;
Colijn, A. P. ;
Conrad, J. ;
Cussonneau, J. P. ;
Decowski, M. P. ;
de Perio, P. ;
Depoian, A. ;
Di Gangi, P. ;
Di Giovanni, A. ;
Diglio, S. ;
Elykov, A. ;
Eurin, G. ;
Fei, J. ;
Ferella, A. D. ;
Fieguth, A. ;
Fulgione, W. ;
Gaemers, P. ;
Rosso, A. Gallo ;
Galloway, M. ;
Gao, F. ;
Garbini, M. ;
Grandi, L. ;
Greene, Z. ;
Hasterok, C. ;
Hils, C. ;
Hogenbirk, E. .
PHYSICAL REVIEW LETTERS, 2019, 123 (25)
[4]   A theory of dark matter [J].
Arkani-Hamed, Nima ;
Finkbeiner, Douglas P. ;
Slatyer, Tracy R. ;
Weiner, Neal .
PHYSICAL REVIEW D, 2009, 79 (01)
[5]   Direct detection of multicomponent secluded WIMPs [J].
Batell, Brian ;
Pospelov, Maxim ;
Ritz, Adam .
PHYSICAL REVIEW D, 2009, 79 (11)
[6]   Self-interacting inelastic dark matter: a viable solution to the small scale structure problems [J].
Blennow, Mattias ;
Clementz, Stefan ;
Herrero-Garcia, Juan .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2017, (03)
[7]   Hidden sector hydrogen as dark matter: Small-scale structure formation predictions and the importance of hyperfine interactions [J].
Boddy, Kimberly K. ;
Kaplinghat, Manoj ;
Kwa, Anna ;
Peter, Annika H. G. .
PHYSICAL REVIEW D, 2016, 94 (12)
[8]   Strongly interacting dark matter: Self-interactions and keV lines [J].
Boddy, Kimberly K. ;
Feng, Jonathan L. ;
Kaplinghat, Manoj ;
Shadmi, Yael ;
Tait, Timothy M. P. .
PHYSICAL REVIEW D, 2014, 90 (09)
[9]   Scalar dark matter candidates [J].
Boem, C ;
Fayet, P .
NUCLEAR PHYSICS B, 2004, 683 (1-2) :219-263
[10]   Production of dark-matter bound states in the early universe by three-body recombination [J].
Braaten, Eric ;
Kang, Daekyoung ;
Laha, Ranjan .
JOURNAL OF HIGH ENERGY PHYSICS, 2018, (11)