Title Topological spin excitations in a three-dimensional antiferromagnet
Authors Yao, Weiliang
Li, Chenyuan
Wang, Lichen
Xue, Shangjie
Dan, Yang
Iida, Kazuki
Kamazawa, Kazuya
Li, Kangkang
Fang, Chen
Li, Yuan
Affiliation Peking Univ, Int Ctr Quantum Mat, Sch Phys, Beijing, Peoples R China.
CROSS, Neutron Sci & Technol Ctr, Tokai, Ibaraki, Japan.
Chinese Acad Sci, Beiijng Natl Lab Condensed Matter Phys, Beijing, Peoples R China.
Chinese Acad Sci, Inst Phys, Beijing, Peoples R China.
Univ Chinese Acad Sci, Beijing, Peoples R China.
CAS Ctr Excellence Topol Quantum Computat, Beijing, Peoples R China.
Collaborat Innovat Ctr Quantum Matter, Beijing, Peoples R China.
Univ Illinois, Dept Mat Sci & Engn, Champaign, IL USA.
Univ Hong Kong, Dept Phys, Hong Kong, Hong Kong, Peoples R China.
Peking Univ, Int Ctr Quantum Mat, Sch Phys, Beijing, Peoples R China.
Fang, C (reprint author), Chinese Acad Sci, Beiijng Natl Lab Condensed Matter Phys, Beijing, Peoples R China.
Fang, C (reprint author), Chinese Acad Sci, Inst Phys, Beijing, Peoples R China.
Fang, C (reprint author), CAS Ctr Excellence Topol Quantum Computat, Beijing, Peoples R China.
Li, Y (reprint author), Collaborat Innovat Ctr Quantum Matter, Beijing, Peoples R China.
Keywords QUANTUM ANTIFERROMAGNET
CU3TEO6
LATTICE
DISCOVERY
SEMIMETAL
SOFTWARE
ORDER
MODEL
Issue Date 2018
Publisher NATURE PHYSICS
Citation NATURE PHYSICS. 2018, 14(10), 1011-+.
Abstract Band topology, namely the global wavefunction structure that gives rise to the properties observed in the bulk and on the surface of crystalline materials, is currently a topic under intense investigation for both fundamental interest and its technological potential(1-4). While topological band crossing in three dimensions was first studied for electrons in semimetals(4-10), the underlying physical idea is not restricted to fermions(11-15) and similar band structures of electromagnetic waves have been observed in artificial structures(16). Fundamental bosonic excitations in real crystals, however, have not been observed to exhibit any counterparts. Here we use inelastic neutron scattering to reveal the presence of topological spin excitations (magnons) in a three-dimensional antiferromagnet, Cu3TeO6, which features a unique lattice of magnetic spin-1/2 Cu2+ ions(17). Further to previous works on this system(17,18), we find that the Cu(2+ )spins interact over a variety of distances, with the ninth-nearest-neighbour interaction being particularly strong. While the presence of topological magnon band crossing is independent of model details's, the far-reaching interactions suppress quantum fluctuations and make the magnon signals sharp and intense. Using accurate measurement and calculation, we visualize two magnon bands that cross at Dirac points protected by (approximate) U(1) spin-rotation symmetry. As a limiting case of topological nodal lines with Z(2)-monopole charges(15,19), these Dirac points are new to the family of experimentally confirmed topological band structures. Our results render magnon systems a fertile ground for exploring novel band topology with neutron scattering, along with distinct observables in other related experiments.
URI http://hdl.handle.net/20.500.11897/529786
ISSN 1745-2473
DOI 10.1038/s41567-018-0213-x
Indexed SCI(E)
Appears in Collections: 量子材料科学中心

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