Abstract
We provide an updated assessment of the power of the Cherenkov Telescope Array (CTA) to search for thermally produced dark matter at the TeV scale, via the associated gamma-ray signal from pair-annihilating dark matter particles in the region around the Galactic centre. We find that CTA will open a new window of discovery potential, significantly extending the range of robustly testable models given a standard cuspy profile of the dark matter density distribution. Importantly, even for a cored profile, the projected sensitivity of CTA will be sufficient to probe various well-motivated models of thermally produced dark matter at the TeV scale. This is due to CTA's unprecedented sensitivity, angular and energy resolutions, and the planned observational strategy. The survey of the inner Galaxy will cover a much larger region than corresponding previous observational campaigns with imaging atmospheric Cherenkov telescopes. CTA will map with unprecedented precision the large-scale diffuse emission in high-energy gamma rays, constituting a background for dark matter searches for which we adopt state-of-the-art models based on current data. Throughout our analysis, we use up-to-date event reconstruction Monte Carlo tools developed by the CTA consortium, and pay special attention to quantifying the level of instrumental systematic uncertainties, as well as background template systematic errors, required to probe thermally produced dark matter at these energies.
| Original language | English |
|---|---|
| Article number | 057 |
| Number of pages | 63 |
| Journal | Journal of Cosmology and Astroparticle Physics |
| Volume | 2021 |
| Issue number | 1 |
| DOIs | |
| Publication status | Published - Jan 2021 |
Keywords
- Dark matter experiments
- Dark matter theory
- Galaxy morphology
- Gamma ray experiments
Cite this
- APA
- Author
- BIBTEX
- Harvard
- Standard
- RIS
- Vancouver
}
In: Journal of Cosmology and Astroparticle Physics, Vol. 2021, No. 1, 057, 01.2021.
Research output: Contribution to journal › Article › Research › peer-review
TY - JOUR
T1 - Sensitivity of the Cherenkov Telescope Array to a dark matter signal from the Galactic centre
AU - Acharyya, A.
AU - Adam, R.
AU - Adams, C.
AU - Agudo, I.
AU - Aguirre-Santaella, A.
AU - Alfaro, R.
AU - Alfaro, J.
AU - Alispach, C.
AU - Aloisio, R.
AU - Alves Batista, R.
AU - Amati, L.
AU - Ambrosi, G.
AU - Angüner, E. O.
AU - Antonelli, L. A.
AU - Aramo, C.
AU - Araudo, A.
AU - Armstrong, T.
AU - Arqueros, F.
AU - Asano, K.
AU - Ascasíbar, Y.
AU - Ashley, M.
AU - Balazs, C.
AU - Ballester, O.
AU - Baquero Larriva, A.
AU - Barbosa Martins, V.
AU - Barkov, M.
AU - Barres de Almeida, U.
AU - Barrio, J. A.
AU - Bastieri, D.
AU - Becerra, J.
AU - Beck, G.
AU - Becker Tjus, J.
AU - Benbow, W.
AU - Benito, M.
AU - Berge, D.
AU - Bernardini, E.
AU - Bernlöhr, K.
AU - Berti, A.
AU - Bertucci, B.
AU - Beshley, V.
AU - Biasuzzi, B.
AU - Biland, A.
AU - Bissaldi, E.
AU - Biteau, J.
AU - Blanch, O.
AU - Blazek, J.
AU - Bocchino, F.
AU - Boisson, C.
AU - Bonneau Arbeletche, L.
AU - Bordas, P.
AU - Bosnjak, Z.
AU - Bottacini, E.
AU - Bozhilov, V.
AU - Bregeon, J.
AU - Brill, A.
AU - Bringmann, T.
AU - Brown, A. M.
AU - Brun, P.
AU - Brun, F.
AU - Bruno, P.
AU - Bulgarelli, A.
AU - Burton, M.
AU - Burtovoi, A.
AU - Buscemi, M.
AU - Cameron, R.
AU - Capasso, M.
AU - Caproni, A.
AU - Capuzzo-Dolcetta, R.
AU - Caraveo, P.
AU - Carosi, R.
AU - Carosi, A.
AU - Casanova, S.
AU - Cascone, E.
AU - Cassol, F.
AU - Catalani, F.
AU - Cauz, D.
AU - Cerruti, M.
AU - Chadwick, P.
AU - Chaty, S.
AU - Chen, A.
AU - Chernyakova, M.
AU - Chiaro, G.
AU - Chiavassa, A.
AU - Chikawa, M.
AU - Chudoba, J.
AU - Çolak, M.
AU - Conforti, V.
AU - Coniglione, R.
AU - Conte, F.
AU - Contreras, J. L.
AU - Coronado-Blazquez, J.
AU - Costa, A.
AU - Costantini, H.
AU - Cotter, G.
AU - Cristofari, P.
AU - D'Aì, A.
AU - D'Ammando, F.
AU - Damone, L. A.
AU - Daniel, M. K.
AU - Dazzi, F.
AU - de Angelis, A.
AU - de Caprio, V.
AU - de Cássia dos Anjos, R.
AU - de Gouveia Dal Pino, E. M.
AU - de Lotto, B.
AU - de Martino, D.
AU - de Oña Wilhelmi, E.
AU - de Palma, F.
AU - de Souza, V.
AU - Delgado, C.
AU - Delgado Giler, A. G.
AU - della Volpe, D.
AU - Depaoli, D.
AU - Di Girolamo, T.
AU - Di Pierro, F.
AU - Di Venere, L.
AU - Diebold, S.
AU - Dmytriiev, A.
AU - Domínguez, A.
AU - Donini, A.
AU - Doro, M.
AU - Ebr, J.
AU - Eckner, C.
AU - Edwards, T. D.P.
AU - Ekoume, T. R.N.
AU - Elsässer, D.
AU - Evoli, C.
AU - Falceta-Goncalves, D.
AU - Fedorova, E.
AU - Fegan, S.
AU - Feng, Q.
AU - Ferrand, G.
AU - Ferrara, G.
AU - Fiandrini, E.
AU - Fiasson, A.
AU - Filipovic, M.
AU - Fioretti, V.
AU - Fiori, M.
AU - Foffano, L.
AU - Fontaine, G.
AU - Fornieri, O.
AU - Franco, F. J.
AU - Fukami, S.
AU - Fukui, Y.
AU - Gaggero, D.
AU - Galaz, G.
AU - Gammaldi, V.
AU - Garcia, E.
AU - Garczarczyk, M.
AU - Gascon, D.
AU - Gent, A.
AU - Ghalumyan, A.
AU - Gianotti, F.
AU - Giarrusso, M.
AU - Giavitto, G.
AU - Giglietto, N.
AU - Giordano, F.
AU - Giuliani, A.
AU - Glicenstein, J.
AU - Gnatyk, R.
AU - Goldoni, P.
AU - González, M. M.
AU - Gourgouliatos, K.
AU - Granot, J.
AU - Grasso, D.
AU - Green, J.
AU - Grillo, A.
AU - Gueta, O.
AU - Gunji, S.
AU - Halim, A.
AU - Hassan, T.
AU - Heller, M.
AU - Hernández Cadena, S.
AU - Hiroshima, N.
AU - Hnatyk, B.
AU - Hofmann, W.
AU - Holder, J.
AU - Horan, D.
AU - Hörandel, J.
AU - Horvath, P.
AU - Hovatta, T.
AU - Hrabovsky, M.
AU - Hrupec, D.
AU - Hughes, G.
AU - Humensky, T. B.
AU - Hütten, M.
AU - Iarlori, M.
AU - Inada, T.
AU - Inoue, S.
AU - Iocco, F.
AU - Iori, M.
AU - Jamrozy, M.
AU - Janecek, P.
AU - Jin, W.
AU - Jouvin, L.
AU - Jurysek, J.
AU - Karukes, E.
AU - Katarzyński, K.
AU - Kazanas, D.
AU - Kerszberg, D.
AU - Kherlakian, M. C.
AU - Kissmann, R.
AU - Knödlseder, J.
AU - Kobayashi, Y.
AU - Kohri, K.
AU - Komin, N.
AU - Kubo, H.
AU - Kushida, J.
AU - Lamanna, G.
AU - Lapington, J.
AU - Laporte, P.
AU - Leigui de Oliveira, M. A.
AU - Lenain, J.
AU - Leone, F.
AU - Leto, G.
AU - Lindfors, E.
AU - Lohse, T.
AU - Lombardi, S.
AU - Longo, F.
AU - Lopez, A.
AU - López, M.
AU - López-Coto, R.
AU - Loporchio, S.
AU - Luque-Escamilla, P. L.
AU - Mach, E.
AU - Maggio, C.
AU - Maier, G.
AU - Mallamaci, M.
AU - Malta Nunes de Almeida, R.
AU - Mandat, D.
AU - Manganaro, M.
AU - Mangano, S.
AU - Manicò, G.
AU - Marculewicz, M.
AU - Mariotti, M.
AU - Markoff, S.
AU - Marquez, P.
AU - Martí, J.
AU - Martinez, O.
AU - Martínez, M.
AU - Martínez, G.
AU - Martínez-Huerta, H.
AU - Maurin, G.
AU - Mazin, D.
AU - Mbarubucyeye, J. D.
AU - Medina Miranda, D.
AU - Meyer, M.
AU - Miceli, M.
AU - Miener, T.
AU - Minev, M.
AU - The CTA consortium
PY - 2021/1
Y1 - 2021/1
N2 - We provide an updated assessment of the power of the Cherenkov Telescope Array (CTA) to search for thermally produced dark matter at the TeV scale, via the associated gamma-ray signal from pair-annihilating dark matter particles in the region around the Galactic centre. We find that CTA will open a new window of discovery potential, significantly extending the range of robustly testable models given a standard cuspy profile of the dark matter density distribution. Importantly, even for a cored profile, the projected sensitivity of CTA will be sufficient to probe various well-motivated models of thermally produced dark matter at the TeV scale. This is due to CTA's unprecedented sensitivity, angular and energy resolutions, and the planned observational strategy. The survey of the inner Galaxy will cover a much larger region than corresponding previous observational campaigns with imaging atmospheric Cherenkov telescopes. CTA will map with unprecedented precision the large-scale diffuse emission in high-energy gamma rays, constituting a background for dark matter searches for which we adopt state-of-the-art models based on current data. Throughout our analysis, we use up-to-date event reconstruction Monte Carlo tools developed by the CTA consortium, and pay special attention to quantifying the level of instrumental systematic uncertainties, as well as background template systematic errors, required to probe thermally produced dark matter at these energies.
AB - We provide an updated assessment of the power of the Cherenkov Telescope Array (CTA) to search for thermally produced dark matter at the TeV scale, via the associated gamma-ray signal from pair-annihilating dark matter particles in the region around the Galactic centre. We find that CTA will open a new window of discovery potential, significantly extending the range of robustly testable models given a standard cuspy profile of the dark matter density distribution. Importantly, even for a cored profile, the projected sensitivity of CTA will be sufficient to probe various well-motivated models of thermally produced dark matter at the TeV scale. This is due to CTA's unprecedented sensitivity, angular and energy resolutions, and the planned observational strategy. The survey of the inner Galaxy will cover a much larger region than corresponding previous observational campaigns with imaging atmospheric Cherenkov telescopes. CTA will map with unprecedented precision the large-scale diffuse emission in high-energy gamma rays, constituting a background for dark matter searches for which we adopt state-of-the-art models based on current data. Throughout our analysis, we use up-to-date event reconstruction Monte Carlo tools developed by the CTA consortium, and pay special attention to quantifying the level of instrumental systematic uncertainties, as well as background template systematic errors, required to probe thermally produced dark matter at these energies.
KW - Dark matter experiments
KW - Dark matter theory
KW - Galaxy morphology
KW - Gamma ray experiments
UR - https://www.scopus.com/pages/publications/85100391469
U2 - 10.1088/1475-7516/2021/01/057
DO - 10.1088/1475-7516/2021/01/057
M3 - Article
AN - SCOPUS:85100391469
SN - 1475-7516
VL - 2021
JO - Journal of Cosmology and Astroparticle Physics
JF - Journal of Cosmology and Astroparticle Physics
IS - 1
M1 - 057
ER -