Deformation of a Quantum Many-Particle System by a Rotating Impurity

During the past 70 years, the quantum theory of angular momentum has been successfully applied to describing the properties of nuclei, atoms, and molecules, and their interactions with each other as well as with external fields. Because of the properties of quantum rotations, the angular-momentum al...

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Main Authors: Richard Schmidt, Mikhail Lemeshko
Format: Article
Language:English
Published: American Physical Society 2016-02-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.6.011012
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spelling doaj-d45ad4be69a44b3cbf4f055130922d352020-11-24T20:53:41ZengAmerican Physical SocietyPhysical Review X2160-33082016-02-016101101210.1103/PhysRevX.6.011012Deformation of a Quantum Many-Particle System by a Rotating ImpurityRichard SchmidtMikhail LemeshkoDuring the past 70 years, the quantum theory of angular momentum has been successfully applied to describing the properties of nuclei, atoms, and molecules, and their interactions with each other as well as with external fields. Because of the properties of quantum rotations, the angular-momentum algebra can be of tremendous complexity even for a few interacting particles, such as valence electrons of an atom, not to mention larger many-particle systems. In this work, we study an example of the latter: a rotating quantum impurity coupled to a many-body bosonic bath. In the regime of strong impurity-bath couplings, the problem involves the addition of an infinite number of angular momenta, which renders it intractable using currently available techniques. Here, we introduce a novel canonical transformation that allows us to eliminate the complex angular-momentum algebra from such a class of many-body problems. In addition, the transformation exposes the problem’s constants of motion, and renders it solvable exactly in the limit of a slowly rotating impurity. We exemplify the technique by showing that there exists a critical rotational speed at which the impurity suddenly acquires one quantum of angular momentum from the many-particle bath. Such an instability is accompanied by the deformation of the phonon density in the frame rotating along with the impurity.http://doi.org/10.1103/PhysRevX.6.011012
collection DOAJ
language English
format Article
sources DOAJ
author Richard Schmidt
Mikhail Lemeshko
spellingShingle Richard Schmidt
Mikhail Lemeshko
Deformation of a Quantum Many-Particle System by a Rotating Impurity
Physical Review X
author_facet Richard Schmidt
Mikhail Lemeshko
author_sort Richard Schmidt
title Deformation of a Quantum Many-Particle System by a Rotating Impurity
title_short Deformation of a Quantum Many-Particle System by a Rotating Impurity
title_full Deformation of a Quantum Many-Particle System by a Rotating Impurity
title_fullStr Deformation of a Quantum Many-Particle System by a Rotating Impurity
title_full_unstemmed Deformation of a Quantum Many-Particle System by a Rotating Impurity
title_sort deformation of a quantum many-particle system by a rotating impurity
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2016-02-01
description During the past 70 years, the quantum theory of angular momentum has been successfully applied to describing the properties of nuclei, atoms, and molecules, and their interactions with each other as well as with external fields. Because of the properties of quantum rotations, the angular-momentum algebra can be of tremendous complexity even for a few interacting particles, such as valence electrons of an atom, not to mention larger many-particle systems. In this work, we study an example of the latter: a rotating quantum impurity coupled to a many-body bosonic bath. In the regime of strong impurity-bath couplings, the problem involves the addition of an infinite number of angular momenta, which renders it intractable using currently available techniques. Here, we introduce a novel canonical transformation that allows us to eliminate the complex angular-momentum algebra from such a class of many-body problems. In addition, the transformation exposes the problem’s constants of motion, and renders it solvable exactly in the limit of a slowly rotating impurity. We exemplify the technique by showing that there exists a critical rotational speed at which the impurity suddenly acquires one quantum of angular momentum from the many-particle bath. Such an instability is accompanied by the deformation of the phonon density in the frame rotating along with the impurity.
url http://doi.org/10.1103/PhysRevX.6.011012
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