On the origin of entropy of gravitationally produced dark matter: the entanglement entropy
Mudit Rai, Daniel Boyanovsky

TL;DR
This paper investigates how entanglement entropy arises from gravitational production of dark matter particles during the early universe, linking quantum decoherence to the thermodynamic properties of dark matter.
Contribution
It demonstrates that entanglement entropy from tracing over particle pairs explains the emergence of entropy in gravitational dark matter production, applicable to various production mechanisms.
Findings
Entanglement entropy matches quantum kinetic entropy in distribution functions.
Ultra light scalar dark matter shows low entropy, indicating a condensed phase.
Fermionic dark matter exhibits nearly thermal distribution with higher entropy.
Abstract
We study the emergence of entropy in gravitational production of dark matter particles, ultra light scalars minimally coupled to gravity and heavier fermions, from inflation to radiation domination (RD). Initial conditions correspond to dark matter fields in their Bunch-Davies vacua during inflation. The "out" states are correlated particle-antiparticle pairs, and the distribution function is found in both cases. In the adiabatic regime the density matrix features rapid decoherence by dephasing from interference effects in the basis of "out" particle states, effectively reducing it to a diagonal form with a concomitant von Neumann entropy. We show that it is exactly the entanglement entropy obtained by tracing over one member of the correlated pairs. Remarkably, for both statistics the entanglement entropy is similar to the quantum kinetic entropy in terms of the distribution function…
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