Testing scalar dark matter clumps with Pulsar Timing Arrays

Fuente: arXiv
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Main Authors: Brax, Philippe, Valageas, Patrick
Format: Preprint
Published: 2025
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author Brax, Philippe
Valageas, Patrick
author_facet Brax, Philippe
Valageas, Patrick
contents Scalar dark matter is a viable alternative to particle dark matter models such as Weakly Interacting Massive Particles (WIMPS). This is particularly the case for scalars with a low mass $m \gtrsim 10^{-21} {\rm eV}$ as required to make quantum effects macroscopic on galactic scales. We point out that by synchronising the measurements of arrival times of pairs of pulsars, Pulsar Timing Arrays (PTA) could probe ultralight dark matter (ULDM) scenarios with a mass $10^{-23} {\rm eV}\lesssim m \lesssim 10^{-19} {\rm eV}$ that is greater than the one reached in standard analysis. The upper limit on the mass $m$ is set by the time lag $Δt$ between the observations of the two pulsars and could be pushed above $10^{-19} {\rm eV}$ for $Δt$ smaller than one hour. However, for these high scalar masses only very high density dark matter clouds could be detected and the capture rate of neutron stars is too low to provide sufficient statistics. Significant detection probabilities would thus require direct dark-matter-baryon interactions that favor the formation of neutron stars within such dark matter clouds, or the discovery of black hole/pulsar binary systems, taking advantage of the dark matter spike generated by the black hole.
format Preprint
id arxiv_https___arxiv_org_abs_2506_08786
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Testing scalar dark matter clumps with Pulsar Timing Arrays
Brax, Philippe
Valageas, Patrick
Cosmology and Nongalactic Astrophysics
Scalar dark matter is a viable alternative to particle dark matter models such as Weakly Interacting Massive Particles (WIMPS). This is particularly the case for scalars with a low mass $m \gtrsim 10^{-21} {\rm eV}$ as required to make quantum effects macroscopic on galactic scales. We point out that by synchronising the measurements of arrival times of pairs of pulsars, Pulsar Timing Arrays (PTA) could probe ultralight dark matter (ULDM) scenarios with a mass $10^{-23} {\rm eV}\lesssim m \lesssim 10^{-19} {\rm eV}$ that is greater than the one reached in standard analysis. The upper limit on the mass $m$ is set by the time lag $Δt$ between the observations of the two pulsars and could be pushed above $10^{-19} {\rm eV}$ for $Δt$ smaller than one hour. However, for these high scalar masses only very high density dark matter clouds could be detected and the capture rate of neutron stars is too low to provide sufficient statistics. Significant detection probabilities would thus require direct dark-matter-baryon interactions that favor the formation of neutron stars within such dark matter clouds, or the discovery of black hole/pulsar binary systems, taking advantage of the dark matter spike generated by the black hole.
title Testing scalar dark matter clumps with Pulsar Timing Arrays
topic Cosmology and Nongalactic Astrophysics
url https://arxiv.org/abs/2506.08786