Quantum Excitations in Quantum Spin Ice

Recent work has highlighted remarkable effects of classical thermal fluctuations in the dipolar spin ice compounds, such as “artificial magnetostatics,” manifesting as Coulombic power-law spin correlations and particles behaving as diffusive “magnetic monopoles.” In this paper, we address quantum sp...

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Main Authors: Kate A. Ross, Lucile Savary, Bruce D. Gaulin, Leon Balents
Format: Article
Language:English
Published: American Physical Society 2011-10-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.1.021002
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spelling doaj-d3baea2caa5348a7b8934e37acbb67312020-11-24T23:27:09ZengAmerican Physical SocietyPhysical Review X2160-33082011-10-011202100210.1103/PhysRevX.1.021002Quantum Excitations in Quantum Spin IceKate A. RossLucile SavaryBruce D. GaulinLeon BalentsRecent work has highlighted remarkable effects of classical thermal fluctuations in the dipolar spin ice compounds, such as “artificial magnetostatics,” manifesting as Coulombic power-law spin correlations and particles behaving as diffusive “magnetic monopoles.” In this paper, we address quantum spin ice, giving a unifying framework for the study of magnetism of a large class of magnetic compounds with the pyrochlore structure, and, in particular, discuss Yb_{2}Ti_{2}O_{7}, and extract its full set of Hamiltonian parameters from high-field inelastic neutron scattering experiments. We show that fluctuations in Yb_{2}Ti_{2}O_{7} are strong, and that the Hamiltonian may support a Coulombic “quantum spin liquid” ground state in low magnetic fields and host an unusual quantum critical point at larger fields. This appears consistent with puzzling features seen in prior experiments on Yb_{2}Ti_{2}O_{7}. Thus, Yb_{2}Ti_{2}O_{7} is the first quantum spin liquid candidate for which the Hamiltonian is quantitatively known.http://doi.org/10.1103/PhysRevX.1.021002
collection DOAJ
language English
format Article
sources DOAJ
author Kate A. Ross
Lucile Savary
Bruce D. Gaulin
Leon Balents
spellingShingle Kate A. Ross
Lucile Savary
Bruce D. Gaulin
Leon Balents
Quantum Excitations in Quantum Spin Ice
Physical Review X
author_facet Kate A. Ross
Lucile Savary
Bruce D. Gaulin
Leon Balents
author_sort Kate A. Ross
title Quantum Excitations in Quantum Spin Ice
title_short Quantum Excitations in Quantum Spin Ice
title_full Quantum Excitations in Quantum Spin Ice
title_fullStr Quantum Excitations in Quantum Spin Ice
title_full_unstemmed Quantum Excitations in Quantum Spin Ice
title_sort quantum excitations in quantum spin ice
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2011-10-01
description Recent work has highlighted remarkable effects of classical thermal fluctuations in the dipolar spin ice compounds, such as “artificial magnetostatics,” manifesting as Coulombic power-law spin correlations and particles behaving as diffusive “magnetic monopoles.” In this paper, we address quantum spin ice, giving a unifying framework for the study of magnetism of a large class of magnetic compounds with the pyrochlore structure, and, in particular, discuss Yb_{2}Ti_{2}O_{7}, and extract its full set of Hamiltonian parameters from high-field inelastic neutron scattering experiments. We show that fluctuations in Yb_{2}Ti_{2}O_{7} are strong, and that the Hamiltonian may support a Coulombic “quantum spin liquid” ground state in low magnetic fields and host an unusual quantum critical point at larger fields. This appears consistent with puzzling features seen in prior experiments on Yb_{2}Ti_{2}O_{7}. Thus, Yb_{2}Ti_{2}O_{7} is the first quantum spin liquid candidate for which the Hamiltonian is quantitatively known.
url http://doi.org/10.1103/PhysRevX.1.021002
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