%0 Journal Article %T Signatures of primordial black hole dark matter at DUNE and THEIA %A De Romeri, V. %A Martinez-Mirave, P. %A Tortola, M. %J Journal of Cosmology and Astroparticle Physics %D 2021 %V 10 %N 10 %I IOP Publishing Ltd %@ 1475-7516 %G English %F DeRomeri_etal2021 %O WOS:000758221400007 %O exported from refbase (https://references.ific.uv.es/refbase/show.php?record=5140), last updated on Wed, 09 Mar 2022 08:06:09 +0000 %X Primordial black holes (PBHs) are a potential dark matter candidate whose masses can span over many orders of magnitude. If they have masses in the 10(15)-10(17) g range, they can emit sizeable fluxes of MeV neutrinos through evaporation via Hawking radiation. We explore the possibility of detecting light (non-)rotating PBHs with future neutrino experiments. We focus on two next generation facilities: the Deep Underground Neutrino Experiment (DUNE) and THEIA. We simulate the expected event spectra at both experiments assuming different PBH mass distributions and spins, and we extract the expected 95% C.L. sensitivities to these scenarios. Our analysis shows that future neutrino experiments like DUNE and THEIA will be able to set competitive constraints on PBH dark matter, thus providing complementary probes in a part of the PBH parameter space currently constrained mainly by photon data. %K dark matter theory %K neutrino experiments %K primordial black holes %R 10.1088/1475-7516/2021/10/051 %U https://arxiv.org/abs/2106.05013 %U https://doi.org/10.1088/1475-7516/2021/10/051 %P 051-21pp