6533b86dfe1ef96bd12ca033

RESEARCH PRODUCT

Gravitational Waves from an Axion-Dark Photon System: A Lattice Study

Ben A. StefanekPedro SchwallerWolfram Ratzinger

subject

PhysicsPhotonCosmology and Nongalactic Astrophysics (astro-ph.CO)010308 nuclear & particles physicsGravitational wavemedia_common.quotation_subjectPhysicsQC1-999Cosmic microwave backgroundDark matterGeneral Physics and AstronomyFOS: Physical sciencesPolarization (waves)01 natural sciencesDark photonUniverseHigh Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)Quantum electrodynamics0103 physical sciences010306 general physicsAxionmedia_commonAstrophysics - Cosmology and Nongalactic Astrophysics

description

In this work, we present a lattice study of an axion - dark photon system in the early Universe and show that the stochastic gravitational wave (GW) background produced by this system may be probed by future GW experiments across a vast range of frequencies. The numerical simulation on the lattice allows us to take into account non-linear backreaction effects and enables us to accurately predict the final relic abundance of the axion or axion-like particle (ALP) as well as its inhomogeneities, and gives a more precise prediction of the GW spectrum. Importantly, we find that the GW spectrum has more power at high momenta due to $2\rightarrow1$ processes. Furthermore, we find the degree of polarization of the peak of the GW spectrum depends on the ALP-dark photon coupling and that the polarization can be washed out or even flipped for large values thereof. In line with recent results in the literature, we find the ALP relic abundance may be suppressed by two orders of magnitude and discuss possible extensions of the model that expand the viable parameter space. Finally, we discuss the possibility to probe ultralight ALP dark matter via spectral distortions of the CMB.

https://dx.doi.org/10.48550/arxiv.2012.11584