Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}

We analyze the effect of quenched disorder on spin-1/2 quantum magnets in which magnetic frustration promotes the formation of local singlets. Our results include a theory for 2D valence-bond solids subject to weak bond randomness, as well as extensions to stronger disorder regimes where we make con...

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Main Authors: Itamar Kimchi, Adam Nahum, T. Senthil
Format: Article
Language:English
Published: American Physical Society 2018-07-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.8.031028
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spelling doaj-da4672bcd8cb473c8519a70397a9b6f32020-11-24T22:06:27ZengAmerican Physical SocietyPhysical Review X2160-33082018-07-018303102810.1103/PhysRevX.8.031028Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}Itamar KimchiAdam NahumT. SenthilWe analyze the effect of quenched disorder on spin-1/2 quantum magnets in which magnetic frustration promotes the formation of local singlets. Our results include a theory for 2D valence-bond solids subject to weak bond randomness, as well as extensions to stronger disorder regimes where we make connections with quantum spin liquids. We find, on various lattices, that the destruction of a valence-bond solid phase by weak quenched disorder leads inevitably to the nucleation of topological defects carrying spin-1/2 moments. This renormalizes the lattice into a strongly random spin network with interesting low-energy excitations. Similarly, when short-ranged valence bonds would be pinned by stronger disorder, we find that this putative glass is unstable to defects that carry spin-1/2 magnetic moments, and whose residual interactions decide the ultimate low-energy fate. Motivated by these results we conjecture Lieb-Schultz-Mattis-like restrictions on ground states for disordered magnets with spin 1/2 per statistical unit cell. These conjectures are supported by an argument for 1D spin chains. We apply insights from this study to the phenomenology of YbMgGaO_{4}, a recently discovered triangular lattice spin-1/2 insulator which was proposed to be a quantum spin liquid. We instead explore a description based on the present theory. Experimental signatures, including unusual specific heat, thermal conductivity, and dynamical structure factor, and their behavior in a magnetic field, are predicted from the theory, and compare favorably with existing measurements on YbMgGaO_{4} and related materials.http://doi.org/10.1103/PhysRevX.8.031028
collection DOAJ
language English
format Article
sources DOAJ
author Itamar Kimchi
Adam Nahum
T. Senthil
spellingShingle Itamar Kimchi
Adam Nahum
T. Senthil
Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}
Physical Review X
author_facet Itamar Kimchi
Adam Nahum
T. Senthil
author_sort Itamar Kimchi
title Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}
title_short Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}
title_full Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}
title_fullStr Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}
title_full_unstemmed Valence Bonds in Random Quantum Magnets: Theory and Application to YbMgGaO_{4}
title_sort valence bonds in random quantum magnets: theory and application to ybmggao_{4}
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2018-07-01
description We analyze the effect of quenched disorder on spin-1/2 quantum magnets in which magnetic frustration promotes the formation of local singlets. Our results include a theory for 2D valence-bond solids subject to weak bond randomness, as well as extensions to stronger disorder regimes where we make connections with quantum spin liquids. We find, on various lattices, that the destruction of a valence-bond solid phase by weak quenched disorder leads inevitably to the nucleation of topological defects carrying spin-1/2 moments. This renormalizes the lattice into a strongly random spin network with interesting low-energy excitations. Similarly, when short-ranged valence bonds would be pinned by stronger disorder, we find that this putative glass is unstable to defects that carry spin-1/2 magnetic moments, and whose residual interactions decide the ultimate low-energy fate. Motivated by these results we conjecture Lieb-Schultz-Mattis-like restrictions on ground states for disordered magnets with spin 1/2 per statistical unit cell. These conjectures are supported by an argument for 1D spin chains. We apply insights from this study to the phenomenology of YbMgGaO_{4}, a recently discovered triangular lattice spin-1/2 insulator which was proposed to be a quantum spin liquid. We instead explore a description based on the present theory. Experimental signatures, including unusual specific heat, thermal conductivity, and dynamical structure factor, and their behavior in a magnetic field, are predicted from the theory, and compare favorably with existing measurements on YbMgGaO_{4} and related materials.
url http://doi.org/10.1103/PhysRevX.8.031028
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AT adamnahum valencebondsinrandomquantummagnetstheoryandapplicationtoybmggao4
AT tsenthil valencebondsinrandomquantummagnetstheoryandapplicationtoybmggao4
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