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arXiv:2212.02530·v2·General Relativity and Quantum Cosmology

Boson stars and their relatives in semiclassical gravity

Miguel Alcubierre🇲🇽 · Juan Barranco🇲🇽 · Argelia Bernal🇲🇽 · Juan Carlos Degollado🇲🇽 · Alberto Diez-Tejedor🇲🇽 · Miguel Megevand🇦🇷 · Darío Núñez🇲🇽 · Olivier Sarbach🇲🇽

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Abstract

We construct boson star configurations in quantum field theory using the semiclassical gravity approximation. Restricting our attention to the static case, we show that the semiclassical Einstein-Klein-Gordon system for a {\it single real quantum} scalar field whose state describes the excitation of {\it identical particles}, each one corresponding to a given energy level, can be reduced to the Einstein-Klein-Gordon system for {\it complex classical} scalar fields. Particular consideration is given to the spherically symmetric static scenario, where energy levels are labeled by quantum numbers , and . When all particles are accommodated in the ground state , one recovers the standard static boson star solutions, that can be excited if . On the other hand, for the case where all particles have fixed radial and total angular momentum numbers and , with , but are homogeneously distributed with respect to their magnetic number , one obtains the -boson stars, whereas when and takes multiple values, the multi-state boson star solutions are obtained. Further generalizations of these configurations are presented, including the multi- multi-state boson stars, that constitute the most general solutions to the -particle, static, spherically symmetric, semiclassical real Einstein-Klein-Gordon system, in which the total number of particles is definite. In spite of the fact that the same spacetime configurations also appear in multi-field classical theories, in semiclassical gravity they arise naturally as the quantum fluctuations associated with the state of a single field describing a many-body system. Our results could have potential impact on direct detection experiments in the context of ultralight scalar field/fuzzy dark matter candidates.

Comments: 21 pages, 1 figure, 3 tables. To appear in Phys. Rev. D

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