Inelastic neutron scattering studies of the role of interlayer spins in the kagome quantum magnets barlowite and Zn-barlowite
ORAL
Abstract
Geometrically frustrated spins on kagome lattices may exhibit long-range entanglement in the form of a quantum spin liquid (QSL) ground state. Substituting inter-kagome-layer copper atoms in barlowite (Cu4(OH)6Cl2) with zinc atoms yields Zn-barlowite (ZnxCu4-x(OH)6Cl2), which has emerged as a recent candidate QSL material. In real growths, this substitution is imperfect (x<1), and some magnetic atoms remain between kagome layers. Ground states of impurity-affected kagome lattices are still poorly understood and open questions remain on how impurities may modify QSL states in frustrated magnets. This talk highlights recent inelastic neutron scattering measurements on barlowite and on large single crystals of Zn-barlowite. Quantitative analyses and comparisons of these data uncover kagome-to-interlayer coupling behaviors and elucidate how interlayer spins may affect magnetic ordering in barlowite and QSL formation in Zn-barlowite.
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Presenters
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Arthur C Campello
Stanford University
Authors
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Arthur C Campello
Stanford University
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Aaron T Breidenbach
Stanford University
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Young S Lee
Stanford University
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Jiajia Wen
Stanford University
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Rebecca Smaha
Stanford Univ
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Wei He
Stanford Univ
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Nicholas P Butch
National Institute of Standards and Tech, NIST and U. of Maryland
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Daniel M Pajerowski
Oak Ridge National Lab