English

Multipolar boson stars: macroscopic Bose-Einstein condensates akin to hydrogen orbitals

General Relativity and Quantum Cosmology 2020-12-23 v1 High Energy Physics - Theory

Abstract

Boson stars are often described as macroscopic Bose-Einstein condensates. By accommodating large numbers of bosons in the same quantum state, they materialize macroscopically the intangible probability density cloud of a single particle in the quantum world. We take this interpretation of boson stars one step further. We show, by explicitly constructing the fully non-linear solutions, that static (in terms of their spacetime metric, gμνg_{\mu\nu}) boson stars, composed of a single complex scalar field, Φ\Phi, can have a non-trivial multipolar structure, yielding the same morphologies for their energy density as those that elementary hydrogen atomic orbitals have for their probability density. This provides a close analogy between the elementary solutions of the non-linear Einstein--Klein-Gordon theory, denoted Φ(N,,m)\Phi_{(N,\ell,m)}, which could be realized in the macrocosmos, and those of the linear Schr\"odinger equation in a Coulomb potential, denoted Ψ(N,,m)\Psi_{(N,\ell,m)}, that describe the microcosmos. In both cases, the solutions are classified by a triplet of quantum numbers (N,,m)(N,\ell,m). In the gravitational theory, multipolar boson stars can be interpreted as individual bosonic lumps in equilibrium; remarkably, the (generic) solutions with m0m\neq 0 describe gravitating solitons [gμν,Φ(N,,m)][g_{\mu\nu},\Phi_{(N,\ell,m)}] without any continuous symmetries. Multipolar boson stars analogue to hybrid orbitals are also constructed.

Keywords

Cite

@article{arxiv.2008.10608,
  title  = {Multipolar boson stars: macroscopic Bose-Einstein condensates akin to hydrogen orbitals},
  author = {C. A. R. Herdeiro and J. Kunz and I. Perapechka and E. Radu and Ya. Shnir},
  journal= {arXiv preprint arXiv:2008.10608},
  year   = {2020}
}

Comments

5 pages, 4 figures