4.8 Review

Topological kagome magnets and superconductors

期刊

NATURE
卷 612, 期 7941, 页码 647-657

出版社

NATURE PORTFOLIO
DOI: 10.1038/s41586-022-05516-0

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资金

  1. US Department of Energy, Office of Science, National Quantum Information Science Research Centers, Quantum Science Center and Princeton University
  2. Gordon and Betty Moore Foundation [GBMF9461]
  3. US DOE under the Basic Energy Sciences programme [DOE/BES DE-FG-02-05ER46200]
  4. Alfred P. Sloan Foundation
  5. National Science Foundation through Princeton University's Materials Research Science and Engineering Center [DMR-2011750]
  6. National Science Foundation [DMR-2141966]
  7. Princeton University
  8. South University of Science and Technology of China [Y01202500]
  9. Stanford University

向作者/读者索取更多资源

A kagome lattice naturally exhibits Dirac fermions, flat bands, and van Hove singularities, which enable the realization of topological kagome magnets and superconductors with exotic properties. Recent studies have shown that the quantum interactions between geometry, topology, spin, and correlation give rise to rich emergent phenomena in kagome materials. These developments advance the frontier of topological quantum matter and bridge topological quantum physics and correlated many-body physics.
A kagome lattice naturally features Dirac fermions, flat bands and van Hove singularities in its electronic structure. The Dirac fermions encode topology, flat bands favour correlated phenomena such as magnetism, and van Hove singularities can lead to instabilities towards long-range many-body orders, altogether allowing for the realization and discovery of a series of topological kagome magnets and superconductors with exotic properties. Recent progress in exploring kagome materials has revealed rich emergent phenomena resulting from the quantum interactions between geometry, topology, spin and correlation. Here we review these key developments in this field, starting from the fundamental concepts of a kagome lattice, to the realizations of Chern and Weyl topological magnetism, to various flat-band many-body correlations, and then to the puzzles of unconventional charge-density waves and superconductivity. We highlight the connection between theoretical ideas and experimental observations, and the bond between quantum interactions within kagome magnets and kagome superconductors, as well as their relation to the concepts in topological insulators, topological superconductors, Weyl semimetals and high-temperature superconductors. These developments broadly bridge topological quantum physics and correlated many-body physics in a wide range of bulk materials and substantially advance the frontier of topological quantum matter.

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