Moriya Rai, Kinoshita Kei, Crosse J A, Watanabe Kenji, Taniguchi Takashi, Masubuchi Satoru, Moon Pilkyung, Koshino Mikito, Machida Tomoki
Institute of Industrial Science, University of Tokyo, 4-6-1 Komaba, Meguro, Tokyo, 153-8505, Japan.
New York University Shanghai and NYU-ECNU Institute of Physics at NYU Shanghai, Shanghai, China.
Nat Commun. 2020 Oct 23;11(1):5380. doi: 10.1038/s41467-020-19043-x.
Bloch electrons lacking inversion symmetry exhibit orbital magnetic moments owing to the rotation around their center of mass; this moment induces a valley splitting in a magnetic field. For the graphene/h-BN moiré superlattice, inversion symmetry is broken by the h-BN. The superlattice potential generates a series of Dirac points (DPs) and van Hove singularities (vHSs) within an experimentally accessible low energy state, providing a platform to study orbital moments with respect to band structure. In this work, theoretical calculations and magnetothermoelectric measurements are combined to reveal the emergence of an orbital magnetic moment at vHSs in graphene/h-BN moiré superlattices. The thermoelectric signal for the vHS at the low energy side of the hole-side secondary DP exhibited significant magnetic field-induced valley splitting with an effective g-factor of approximately 130; splitting for other vHSs was negligible. This was attributed to the emergence of an orbital magnetic moment at the second vHS at the hole-side.
缺乏反演对称性的布洛赫电子由于绕其质心旋转而表现出轨道磁矩;该磁矩在磁场中会引起能谷分裂。对于石墨烯/h-BN莫尔超晶格,h-BN打破了反演对称性。超晶格势在实验可及的低能态内产生一系列狄拉克点(DPs)和范霍夫奇点(vHSs),为研究与能带结构相关的轨道磁矩提供了一个平台。在这项工作中,结合理论计算和磁热电测量来揭示石墨烯/h-BN莫尔超晶格中vHSs处轨道磁矩的出现。空穴侧次级DP低能侧vHS的热电信号表现出显著的磁场诱导能谷分裂,有效g因子约为130;其他vHSs的分裂可忽略不计。这归因于空穴侧第二个vHS处轨道磁矩的出现。