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Article: Quantum spin liquid emerging in two-dimensional correlated Dirac fermions

TitleQuantum spin liquid emerging in two-dimensional correlated Dirac fermions
Authors
Issue Date2010
Citation
Nature, 2010, v. 464, n. 7290, p. 847-851 How to Cite?
AbstractAt sufficiently low temperatures, condensed-matter systems tend to develop order. A notable exception to this behaviour is the case of quantum spin liquids, in which quantum fluctuations prevent a transition to an ordered state down to the lowest temperatures. There have now been tentative observations of such states in some two-dimensional organic compounds, yet quantum spin liquids remain elusive in microscopic two-dimensional models that are relevant to experiments. Here we show, by means of large-scale quantum Monte Carlo simulations of correlated fermions on a honeycomb lattice (a structure realized in, for example, graphene), that a quantum spin liquid emerges between the state described by massless Dirac fermions and an antiferromagnetically ordered Mott insulator. This unexpected quantum-disordered state is found to be a short-range resonating valence-bond liquid, akin to the one proposed for high-temperature superconductors: the possibility of unconventional superconductivity through doping therefore arises in our system. We foresee the experimental realization of this model system using ultra-cold atoms, or group IV elements arranged in honeycomb lattices. © 2010 Macmillan Publishers Limited. All rights reserved.
Persistent Identifierhttp://hdl.handle.net/10722/268517
ISSN
2021 Impact Factor: 69.504
2020 SCImago Journal Rankings: 15.993
ISI Accession Number ID

 

DC FieldValueLanguage
dc.contributor.authorMeng, Z. Y.-
dc.contributor.authorLang, T. C.-
dc.contributor.authorWessel, S.-
dc.contributor.authorAssaad, F. F.-
dc.contributor.authorMuramatsu, A.-
dc.date.accessioned2019-03-25T07:59:54Z-
dc.date.available2019-03-25T07:59:54Z-
dc.date.issued2010-
dc.identifier.citationNature, 2010, v. 464, n. 7290, p. 847-851-
dc.identifier.issn0028-0836-
dc.identifier.urihttp://hdl.handle.net/10722/268517-
dc.description.abstractAt sufficiently low temperatures, condensed-matter systems tend to develop order. A notable exception to this behaviour is the case of quantum spin liquids, in which quantum fluctuations prevent a transition to an ordered state down to the lowest temperatures. There have now been tentative observations of such states in some two-dimensional organic compounds, yet quantum spin liquids remain elusive in microscopic two-dimensional models that are relevant to experiments. Here we show, by means of large-scale quantum Monte Carlo simulations of correlated fermions on a honeycomb lattice (a structure realized in, for example, graphene), that a quantum spin liquid emerges between the state described by massless Dirac fermions and an antiferromagnetically ordered Mott insulator. This unexpected quantum-disordered state is found to be a short-range resonating valence-bond liquid, akin to the one proposed for high-temperature superconductors: the possibility of unconventional superconductivity through doping therefore arises in our system. We foresee the experimental realization of this model system using ultra-cold atoms, or group IV elements arranged in honeycomb lattices. © 2010 Macmillan Publishers Limited. All rights reserved.-
dc.languageeng-
dc.relation.ispartofNature-
dc.titleQuantum spin liquid emerging in two-dimensional correlated Dirac fermions-
dc.typeArticle-
dc.description.naturelink_to_subscribed_fulltext-
dc.identifier.doi10.1038/nature08942-
dc.identifier.scopuseid_2-s2.0-77950842509-
dc.identifier.volume464-
dc.identifier.issue7290-
dc.identifier.spage847-
dc.identifier.epage851-
dc.identifier.eissn1476-4687-
dc.identifier.isiWOS:000276397300028-
dc.identifier.issnl0028-0836-

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