Chen Xiao, Liu Shuanglong, Fry James N, Cheng Hai-Ping
Department of Physics, University of Florida, Gainesville, FL 32611, United States of America.
Quantum Theory Project, University of Florida, Gainesville, FL 32611, United States of America.
J Phys Condens Matter. 2022 Jul 18;34(38). doi: 10.1088/1361-648X/ac7e9a.
Magic-angle twisted bilayer graphene (MATBG) is notable as a highly tunable platform for investigating strongly correlated phenomena such as unconventional superconductivity and quantum spin liquids, due to easy control of doping level through gating and sensitive dependence of the magic angle on hydrostatic pressure. Experimental observations of correlated insulating states, unconventional superconductivity and ferromagnetism in MATBG indicate that this system exhibits rich exotic phases. In this work, using density functional theory calculations in conjunction with the effective screening medium method, we find the MATBG under pressure at a twisting angle of 2.88and simulate how its electronic states evolve when doping level and electric field perpendicular to plane are tuned by gating. Our calculations show that, at doping levels between two electrons and four holes per moiré unit cell, a ferromagnetic (FM) solution with spin density localized at AA stacking sites is lower in energy than the nonmagnetic solution. The magnetic moment of this FM state decreases with both electron and hole doping and vanishes at four electrons/holes doped per moiré unit cell. Hybridization between the flat bands at the Fermi level and the surrounding dispersive bands can take place at finite doping. On increasing the out-of-plane electric field at zero doping, a transition from the FM state to the nonmagnetic one is seen. An investigation of impurity effects shows that both absorption ofO2molecules and occurrence of Stone-Wales impurities suppress the FM state, and the mechanisms are understood from our calculations. We also analyze the interlayer bonding character due to flat bands via Wannier functions. Finally, we report trivial band topology of the flat bands in the FM state at a certain doping level.
魔角扭曲双层石墨烯(MATBG)是一个非常值得关注的高度可调平台,可用于研究强关联现象,如非常规超导和量子自旋液体,这是因为通过门电压易于控制掺杂水平,且魔角对静水压力敏感。在MATBG中对关联绝缘态、非常规超导和铁磁性的实验观察表明,该系统呈现出丰富的奇异相。在这项工作中,我们结合有效屏蔽介质方法使用密度泛函理论计算,研究了压力下扭曲角为2.88°的MATBG,并模拟了通过门电压调节掺杂水平和垂直于平面的电场时其电子态如何演化。我们的计算表明,在每个莫尔晶胞掺杂两个电子到四个空穴的水平之间,自旋密度局域在AA堆积位点的铁磁(FM)解的能量低于非磁解。这种FM态的磁矩随着电子和空穴掺杂而减小,在每个莫尔晶胞掺杂四个电子/空穴时消失。在有限掺杂下,费米能级处的平带与周围色散带之间会发生杂化。在零掺杂时增加面外电场,会观察到从FM态到非磁态的转变。对杂质效应的研究表明,O₂分子的吸附和斯通 - 威尔士杂质的出现都会抑制FM态,我们从计算中理解了其机制。我们还通过万尼尔函数分析了由于平带导致的层间键合特性。最后,我们报道了在特定掺杂水平下FM态平带的平凡能带拓扑结构。