凝聚态物理
物理
塞曼效应
石墨烯
拓扑绝缘体
量子霍尔效应
库仑
拓扑序
基态
量子自旋霍尔效应
双层石墨烯
量子相
磁场
量子力学
量子反常霍尔效应
拓扑(电路)
液晶
量子态
绝缘体(电)
量子
量子相变
Chern类
莫特绝缘子
相变
石墨烯纳米带
电子
电子能带结构
拓扑量子数
电荷(物理)
作者
Shihao Zhang,Xi Dai,Jianpeng Liu
标识
DOI:10.1103/physrevlett.128.026403
摘要
We theoretically study the correlated insulator states, quantum anomalous Hall (QAH) states, and field-induced topological transitions between different correlated states in twisted multilayer graphene systems. Taking twisted bilayer-monolayer graphene and twisted double-bilayer graphene as examples, we show that both systems stay in spin-polarized, C_{3z}-broken insulator states with zero Chern number at 1/2 filling of the flat bands under finite displacement fields. In some cases these spin-polarized, nematic insulator states are in the quantum valley Hall (QVH) phase by virtue of the nontrivial band topology of the systems. The spin-polarized insulator state is quasidegenerate with the valley polarized state if only the dominant intravalley Coulomb interaction is included. Such quasidegeneracy can be split by atomic on-site interactions such that the spin-polarized, nematic state become the unique ground state. Such a scenario applies to various twisted multilayer graphene systems at 1/2 filling, thus can be considered as a universal mechanism. Moreover, under vertical magnetic fields, the orbital Zeeman splittings and the field-induced change of charge density in twisted multilayer graphene systems would compete with the atomic Hubbard interactions, which can drive transitions from spin-polarized zero-Chern-number states to valley-polarized QAH states with small onset magnetic fields.
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