论文标题
kagome晶格上排斥相互作用的超导性
Superconductivity from repulsive interactions on the kagome lattice
论文作者
论文摘要
在基于分层的钒金属中发现超导率$ a $ v $ _3 $ _3 $ sb $ _5 $($ a $:k,rb,cs)为不断增长的可能非常常规的超导能力添加了新的材料家族。但是,这些材料中超导配对的性质仍然难以捉摸。我们介绍了基于自旋和电荷 - 裂开的介导的库珀配对的Kagome晶格上领先的超导不稳定性的微观理论研究。应用的方法包括现场和最近的氯排斥性库仑相互作用的效果。在上范·霍夫(Van Hove)填充物附近 - 与$ a $ v $ _3 $ sb $ _5 $材料有关 - 我们找到了一个丰富的相图,其中几个配对对称性几乎是归化的。特别是,虽然相图的很大一部分是由转换为二维不可减至的点组的旋转序列参数占据的,但几个节点自旋 - 三旋转三角配对状态仍然具有竞争力。我们计算领先超导不稳定性层次结构的频带和相互作用参数依赖性,并确定所得优先间隙结构的详细动量依赖性。至关重要的是,对于相互作用参数的中等值,单个配对状态在强度上取决于动量,并在费米表面表现出多个节点。根据$ a $ v $ _3 $ _3 $ sb $ _5 $材料的最新实验发展,我们讨论了这些超导间隙结构的属性。
The discovery of superconductivity in layered vanadium-based kagome metals $A$V$_3$Sb$_5$ ($A$: K, Rb, Cs) has added a new family of materials to the growing class of possible unconventional superconductors. However, the nature of the superconducting pairing in these materials remains elusive. We present a microscopic theoretical study of the leading superconducting instabilities on the kagome lattice based on spin- and charge-fluctuation mediated Cooper pairing. The applied methodology includes effects of both on-site and nearest-neighbor repulsive Coulomb interactions. Near the upper van Hove filling -- relevant for the $A$V$_3$Sb$_5$ materials -- we find a rich phase diagram with several pairing symmetries being nearly degenerate. In particular, while a substantial fraction of the phase diagram is occupied by a spin-singlet order parameter transforming as a two-dimensional irreducible representation of the point group, several nodal spin-triplet pairing states remain competitive. We compute the band and interaction parameter-dependence of the hierarchy of the leading superconducting instabilities, and determine the detailed momentum dependence of the resulting preferred gap structures. Crucially, for moderate values of the interaction parameters, the individual pairing states depend strongly on momentum and exhibit multiple nodes on the Fermi surface. We discuss the properties of these superconducting gap structures in light of recent experimental developments of the $A$V$_3$Sb$_5$ materials.