Importance of cosmic ray propagation on sub-GeV dark matter constraints
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arXiv
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| Format: | Preprint |
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2023
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| author | Luque, Pedro De la Torre Balaji, Shyam Koechler, Jordan |
| author_facet | Luque, Pedro De la Torre Balaji, Shyam Koechler, Jordan |
| contents | We study sub-GeV dark matter (DM) particles that may annihilate or decay into SM particles producing an exotic injection component in the Milky Way that leaves an imprint in both photon and cosmic ray (CR) fluxes. Specifically, the DM particles may annihilate or decay into $e^+e^-$, $μ^+μ^-$ or $π^+π^-$ and may radiate photons through their $e^\pm$ products. The resulting $e^\pm$ products can be directly observed in probes such as {\sc Voyager 1}. Alternatively, the $e^\pm$ products may produce bremsstrahlung radiation and upscatter the low-energy galactic photon fields via the inverse Compton process generating a broad emission from $X$-ray to $γ$-ray energies observable in experiments such as {\sc Xmm-Newton}. We find that we get a significant improvement in the DM annihilation and decay constraints from {\sc Xmm-Newton} (excluding thermally averaged cross sections of $10^{-31}$ cm$^3$ s$^{-1} \lesssim \langle σv\rangle \lesssim10^{-26}$ cm$^3$ s$^{-1}$ and decay lifetimes of $10^{26} \textrm{s}\lesssim τ\lesssim 10^{28} \textrm{s}$ respectively) by including best fit CR propagation and diffusion parameters. This yields the strongest astrophysical constraints for this mass range of DM of 1 MeV to a few GeV and even surpasses cosmological bounds across a wide range of masses as well. |
| format | Preprint |
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arxiv_https___arxiv_org_abs_2311_04979 |
| institution | arXiv |
| publishDate | 2023 |
| record_format | arxiv |
| spellingShingle | Importance of cosmic ray propagation on sub-GeV dark matter constraints Luque, Pedro De la Torre Balaji, Shyam Koechler, Jordan High Energy Physics - Phenomenology We study sub-GeV dark matter (DM) particles that may annihilate or decay into SM particles producing an exotic injection component in the Milky Way that leaves an imprint in both photon and cosmic ray (CR) fluxes. Specifically, the DM particles may annihilate or decay into $e^+e^-$, $μ^+μ^-$ or $π^+π^-$ and may radiate photons through their $e^\pm$ products. The resulting $e^\pm$ products can be directly observed in probes such as {\sc Voyager 1}. Alternatively, the $e^\pm$ products may produce bremsstrahlung radiation and upscatter the low-energy galactic photon fields via the inverse Compton process generating a broad emission from $X$-ray to $γ$-ray energies observable in experiments such as {\sc Xmm-Newton}. We find that we get a significant improvement in the DM annihilation and decay constraints from {\sc Xmm-Newton} (excluding thermally averaged cross sections of $10^{-31}$ cm$^3$ s$^{-1} \lesssim \langle σv\rangle \lesssim10^{-26}$ cm$^3$ s$^{-1}$ and decay lifetimes of $10^{26} \textrm{s}\lesssim τ\lesssim 10^{28} \textrm{s}$ respectively) by including best fit CR propagation and diffusion parameters. This yields the strongest astrophysical constraints for this mass range of DM of 1 MeV to a few GeV and even surpasses cosmological bounds across a wide range of masses as well. |
| title | Importance of cosmic ray propagation on sub-GeV dark matter constraints |
| topic | High Energy Physics - Phenomenology |
| url | https://arxiv.org/abs/2311.04979 |