Exact dimer phase with anisotropic interaction for one dimensional magnets

Abstract We report the exact dimer phase, in which the ground states are described by product of singlet dimer, in the extended XYZ model by generalizing the isotropic Majumdar–Ghosh model to the fully anisotropic region. We demonstrate that this phase can be realized even in models when antiferroma...

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Main Authors: Hong-Ze Xu, Shun-Yao Zhang, Guang-Can Guo, Ming Gong
Format: Article
Language:English
Published: Nature Publishing Group 2021-03-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-85483-0
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spelling doaj-5af0695878424f5aa29dd61a1b557c812021-03-21T12:37:49ZengNature Publishing GroupScientific Reports2045-23222021-03-0111111310.1038/s41598-021-85483-0Exact dimer phase with anisotropic interaction for one dimensional magnetsHong-Ze Xu0Shun-Yao Zhang1Guang-Can Guo2Ming Gong3CAS Key Laboratory of Quantum Information, University of Science and Technology of ChinaCAS Key Laboratory of Quantum Information, University of Science and Technology of ChinaCAS Key Laboratory of Quantum Information, University of Science and Technology of ChinaCAS Key Laboratory of Quantum Information, University of Science and Technology of ChinaAbstract We report the exact dimer phase, in which the ground states are described by product of singlet dimer, in the extended XYZ model by generalizing the isotropic Majumdar–Ghosh model to the fully anisotropic region. We demonstrate that this phase can be realized even in models when antiferromagnetic interaction along one of the three directions. This model also supports three different ferromagnetic (FM) phases, denoted as x-FM, y-FM and z-FM, polarized along the three directions. The boundaries between the exact dimer phase and FM phases are infinite-fold degenerate. The breaking of this infinite-fold degeneracy by either translational symmetry breaking or $${\mathbb {Z}}_2$$ Z 2 symmetry breaking leads to exact dimer phase and FM phases, respectively. Moreover, the boundaries between the three FM phases are critical with central charge $$c=1$$ c = 1 for free fermions. We characterize the properties of these boundaries using entanglement entropy, excitation gap, and long-range spin–spin correlation functions. These results are relevant to a large number of one dimensional magnets, in which anisotropy is necessary to isolate a single chain out from the bulk material. We discuss the possible experimental signatures in realistic materials with magnetic field along different directions and show that the anisotropy may resolve the disagreement between theory and experiments based on isotropic spin-spin interactions.https://doi.org/10.1038/s41598-021-85483-0
collection DOAJ
language English
format Article
sources DOAJ
author Hong-Ze Xu
Shun-Yao Zhang
Guang-Can Guo
Ming Gong
spellingShingle Hong-Ze Xu
Shun-Yao Zhang
Guang-Can Guo
Ming Gong
Exact dimer phase with anisotropic interaction for one dimensional magnets
Scientific Reports
author_facet Hong-Ze Xu
Shun-Yao Zhang
Guang-Can Guo
Ming Gong
author_sort Hong-Ze Xu
title Exact dimer phase with anisotropic interaction for one dimensional magnets
title_short Exact dimer phase with anisotropic interaction for one dimensional magnets
title_full Exact dimer phase with anisotropic interaction for one dimensional magnets
title_fullStr Exact dimer phase with anisotropic interaction for one dimensional magnets
title_full_unstemmed Exact dimer phase with anisotropic interaction for one dimensional magnets
title_sort exact dimer phase with anisotropic interaction for one dimensional magnets
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-03-01
description Abstract We report the exact dimer phase, in which the ground states are described by product of singlet dimer, in the extended XYZ model by generalizing the isotropic Majumdar–Ghosh model to the fully anisotropic region. We demonstrate that this phase can be realized even in models when antiferromagnetic interaction along one of the three directions. This model also supports three different ferromagnetic (FM) phases, denoted as x-FM, y-FM and z-FM, polarized along the three directions. The boundaries between the exact dimer phase and FM phases are infinite-fold degenerate. The breaking of this infinite-fold degeneracy by either translational symmetry breaking or $${\mathbb {Z}}_2$$ Z 2 symmetry breaking leads to exact dimer phase and FM phases, respectively. Moreover, the boundaries between the three FM phases are critical with central charge $$c=1$$ c = 1 for free fermions. We characterize the properties of these boundaries using entanglement entropy, excitation gap, and long-range spin–spin correlation functions. These results are relevant to a large number of one dimensional magnets, in which anisotropy is necessary to isolate a single chain out from the bulk material. We discuss the possible experimental signatures in realistic materials with magnetic field along different directions and show that the anisotropy may resolve the disagreement between theory and experiments based on isotropic spin-spin interactions.
url https://doi.org/10.1038/s41598-021-85483-0
work_keys_str_mv AT hongzexu exactdimerphasewithanisotropicinteractionforonedimensionalmagnets
AT shunyaozhang exactdimerphasewithanisotropicinteractionforonedimensionalmagnets
AT guangcanguo exactdimerphasewithanisotropicinteractionforonedimensionalmagnets
AT minggong exactdimerphasewithanisotropicinteractionforonedimensionalmagnets
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