论文标题
菱形三层石墨烯中的相关金属和非常规的超导性:重新归一化组分析
Correlated metals and unconventional superconductivity in rhombohedral trilayer graphene: A renormalization group analysis
论文作者
论文摘要
通过最近对菱形三层石墨烯(RTG)中相关金属相和超导性的实验观察的动机,我们对孔掺杂的RTG中的电子有序不稳定性进行了无偏见的研究。具体而言,我们专注于电子状态在能量范围内与Van Hove奇点(VHSS),其中很大密度促进了不同的相互作用引起的对称性破坏对称性的电子订单。为了解决VHSS附近的费米表面,我们构建了一个费米子热点模型,并证明垂直电场可以调整费米表面的不同嵌套结构。随后,我们采用重新归一化组分析来描述在短程排斥相互作用以及现实(远距离)库仑相互作用下我们模型的低能相图。我们的分析表明,Intervalley相干金属阶段或超导相位的不稳定性。主要的配对通道至关重要地取决于费米表面嵌套的性质 - 排斥的库仑相互作用有利于旋转singlet $ d $ - 波配对,用于相对较小的位移字段和旋转式singlet $ i $ i $ - 波配对,用于较大的位移场。我们认为,RTG的相图可以通过对现实的库仑相互作用进行建模作为排斥密度密度相互作用的总和和铁磁旋转式间隔(IVC)hund的耦合,而声子介导的电子相互作用对该系统的效果越来越忽略,从而将乘影响倍增,而在乘坐效果上,乘影响乘影响值,而不是综合效果。
Motivated by recent experimental observations of correlated metallic phases and superconductivity in rhombohedral trilayer graphene (RTG), we perform an unbiased study of electronic ordering instabilities in hole-doped RTG. Specifically, we focus on electronic states energetically proximate to Van Hove singularities (VHSs), where a large density of states promotes different interaction-induced symmetry-breaking electronic orders. To resolve the Fermi surface near VHSs, we construct a fermionic hot-spot model and demonstrate that a perpendicular electric field can tune different nesting structures of the Fermi surface. Subsequently, we apply a renormalization group analysis to describe the low-energy phase diagrams of our model under both short-range repulsive interactions as well as realistic (long-range) Coulomb interactions. Our analysis shows instabilities towards either intervalley coherent metallic phases or superconducting phases. The dominant pairing channel depends crucially on the nature of Fermi surface nesting -- repulsive Coulomb interaction favors spin-singlet $d$-wave pairing for relatively small displacement field and spin-singlet $i$-wave pairing for larger displacement field. We argue that the phase diagram of RTG can be well-understood by modeling the realistic Coulomb interaction as the sum of repulsive density-density interaction and ferromagnetic spin-triplet intervalley coherence (IVC) Hund's coupling, while phonon-mediated electronic interactions have a negligible effect on this system, in sharp contrast to twisted graphene multilayers.