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Gate-dependent pseudospin mixing in graphene/boron nitride moiré superlattices

机译:石墨烯/氮化硼云纹超晶格中与门相关的伪自旋混合

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摘要

Electrons in graphene are described by relativistic Dirac-Weyl spinors with a two-component pseudospin1-12. The unique pseudospin structure of Dirac electrons leads to emerging phenomena such as the massless Dirac cone2, anomalous quantum Hall effect2,3, and Klein tunnelling4,5 in graphene. The capability to manipulate electron pseudospin is highly desirable for novel graphene electronics, and it requires precise control to differentiate the two graphene sublattices at the atomic level. Graphene/boron nitride moiré superlattices, where a fast sublattice oscillation due to boron and nitrogen atoms is superimposed on the slow moiré period, provides an attractive approach to engineer the electron pseudospin in graphene13-18. This unusual moiré superlattice leads to a spinor potential with unusual hybridization of electron pseudospins, which can be probed directly through infrared spectroscopy because optical transitions are very sensitive to excited state wavefunctions. Here, we perform micro-infrared spectroscopy on a graphene/boron nitride heterostructure and demonstrate that the moiré superlattice potential is dominated by a pseudospin-mixing component analogous to a spatially varying pseudomagnetic field. In addition, we show that the spinor potential depends sensitively on the gate-induced carrier concentration in graphene, indicating a strong renormalization of the spinor potential from electron-electron interactions.
机译:相对论Dirac-Weyl旋转子描述了石墨烯中的电子,该旋转子具有两组分的pseudospin1-12。狄拉克电子的独特伪自旋结构导致出现新现象,例如石墨烯中无质量的狄拉克锥2,异常量子霍尔效应2,3和克莱因隧道效应4,5。对于新型石墨烯电子器件来说,操纵电子假自旋的能力是非常需要的,并且它需要精确控制才能在原子水平上区分两个石墨烯亚晶格。石墨烯/氮化硼莫尔超晶格,其中由于硼和氮原子引起的快速亚晶格振荡叠加在缓慢的莫尔周期上,提供了一种有吸引力的方法来设计石墨烯13-18中的电子假自旋。这种不寻常的莫尔条纹超晶格会导致自旋子电位与电子假自旋的不寻常杂化,可以通过红外光谱直接探测到它,因为光学跃迁对激发态波函数非常敏感。在这里,我们对石墨烯/氮化硼异质结构进行微红外光谱分析,并证明该莫尔超晶格电势由类似于空间变化的伪磁场的伪自旋混合分量所控制。此外,我们表明,自旋势很敏感地取决于石墨烯中栅极诱导的载流子浓度,表明自电子-电子相互作用而来的自旋势很强地重新归一化。

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