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

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 star...

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Main Authors: C.A.R. Herdeiro, J. Kunz, I. Perapechka, E. Radu, Ya. Shnir
Format: Article
Language:English
Published: Elsevier 2021-01-01
Series:Physics Letters B
Online Access:http://www.sciencedirect.com/science/article/pii/S0370269320308303
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spelling doaj-89e75c5f5fc44cdf9a6f02e18b7597f82021-01-02T05:07:17ZengElsevierPhysics Letters B0370-26932021-01-01812136027Multipolar boson stars: Macroscopic Bose-Einstein condensates akin to hydrogen orbitalsC.A.R. Herdeiro0J. Kunz1I. Perapechka2E. Radu3Ya. Shnir4Departamento de Matemática da Universidade de Aveiro and CIDMA, Campus de Santiago, 3810-183 Aveiro, PortugalInstitute of Physics, University of Oldenburg, Oldenburg, 26111, GermanyDepartment of Theoretical Physics and Astrophysics, Belarusian State University, BelarusDepartamento de Matemática da Universidade de Aveiro and CIDMA, Campus de Santiago, 3810-183 Aveiro, PortugalBLTP, JINR, Joliot-Curie 6, Dubna 141980, Moscow Region, Russia; Corresponding author.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, gμν) boson stars, composed of a single complex scalar field, Φ, 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,ℓ,m), which could be realized in the macrocosmos, and those of the linear Schrödinger equation in a Coulomb potential, denoted Ψ(N,ℓ,m), that describe the microcosmos. In both cases, the solutions are classified by a triplet of quantum numbers (N,ℓ,m). In the gravitational theory, multipolar boson stars can be interpreted as individual bosonic lumps in equilibrium; remarkably, the (generic) solutions with m≠0 describe gravitating solitons [gμν,Φ(N,ℓ,m)] without any continuous symmetries. Multipolar boson stars analogue to hybrid orbitals is also constructed.http://www.sciencedirect.com/science/article/pii/S0370269320308303
collection DOAJ
language English
format Article
sources DOAJ
author C.A.R. Herdeiro
J. Kunz
I. Perapechka
E. Radu
Ya. Shnir
spellingShingle C.A.R. Herdeiro
J. Kunz
I. Perapechka
E. Radu
Ya. Shnir
Multipolar boson stars: Macroscopic Bose-Einstein condensates akin to hydrogen orbitals
Physics Letters B
author_facet C.A.R. Herdeiro
J. Kunz
I. Perapechka
E. Radu
Ya. Shnir
author_sort C.A.R. Herdeiro
title Multipolar boson stars: Macroscopic Bose-Einstein condensates akin to hydrogen orbitals
title_short Multipolar boson stars: Macroscopic Bose-Einstein condensates akin to hydrogen orbitals
title_full Multipolar boson stars: Macroscopic Bose-Einstein condensates akin to hydrogen orbitals
title_fullStr Multipolar boson stars: Macroscopic Bose-Einstein condensates akin to hydrogen orbitals
title_full_unstemmed Multipolar boson stars: Macroscopic Bose-Einstein condensates akin to hydrogen orbitals
title_sort multipolar boson stars: macroscopic bose-einstein condensates akin to hydrogen orbitals
publisher Elsevier
series Physics Letters B
issn 0370-2693
publishDate 2021-01-01
description 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, gμν) boson stars, composed of a single complex scalar field, Φ, 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,ℓ,m), which could be realized in the macrocosmos, and those of the linear Schrödinger equation in a Coulomb potential, denoted Ψ(N,ℓ,m), that describe the microcosmos. In both cases, the solutions are classified by a triplet of quantum numbers (N,ℓ,m). In the gravitational theory, multipolar boson stars can be interpreted as individual bosonic lumps in equilibrium; remarkably, the (generic) solutions with m≠0 describe gravitating solitons [gμν,Φ(N,ℓ,m)] without any continuous symmetries. Multipolar boson stars analogue to hybrid orbitals is also constructed.
url http://www.sciencedirect.com/science/article/pii/S0370269320308303
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