论文标题
拓扑Kagome磁铁和超导体
Topological kagome magnets and superconductors
论文作者
论文摘要
kagome晶格自然具有狄拉克·费米(Dirac Fermions),扁平带和范·霍夫(Van Hove)的奇异性。 Dirac Fermions编码拓扑结构,平面带偏爱相关现象,例如磁性和Van Hove的奇异性,可以导致对远程多体订单的不稳定性,从而完全允许实现和发现一系列拓扑kagome Magnets和具有异型性质的超导体。探索Kagome材料的最新进展揭示了由于几何,拓扑,自旋和相关性之间的量子相互作用而产生的丰富的新兴现象。在这里,我们回顾了该领域的这些关键发展,从kagome晶格的基本概念开始,到Chern和Weyl拓扑磁性的实现,再到各种平坦的多体相关性,然后再到非常规的电荷密度密度波和超管的难题。我们强调了理论思想和实验观察之间的联系,以及Kagome磁铁和Kagome超导体内的量子相互作用之间的键,以及它们与拓扑绝缘体,拓扑超导体,Weyl Smimetals和高温超导管的概念的关系。这些发展广泛地桥接了拓扑量子物理学,并将多体物理学相关联在各种批量材料中,并大大推动了拓扑量子问题的前沿。
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.