论文标题
高弹性单层石墨烯/WSE2异质结构中自旋分解能量分散体的实验性观察
Experimental observation of spin-split energy dispersion in high-mobility single-layer graphene/WSe2 heterostructures
论文作者
论文摘要
石墨烯中的接近诱导的自旋轨道耦合导致观察到有趣的现象,例如时间反转$ \ mathbb {z} _2 $拓扑阶段和自旋轨道滤波效应。如果要将这些令人兴奋的观察结果转换为现实世界应用,对自旋轨道耦合对石墨烯带结构的影响的理解至关重要。在这篇研究文章中,我们报告了在存在强度接近诱导的自旋轨道耦合的情况下,单层石墨烯(SLG)的带结构的实验确定。通过测量量子振荡,我们可以在高弹性HBN封装的SLG/WSE2异质结构中实现这一目标。我们观察到石墨烯带的清晰自旋分解以及费米速度的大幅增加。使用具有现实参数的理论模型来符合我们的实验数据,我们发现了SLG中带隙开口和带逆转的证据。此外,我们确定低能带结构与原始SLG的偏差主要是由Valley-Zeman Soc和Rashba Soc决定的,而Kane-Mele Soc无关紧要。尽管理论上的预测和观察到了乐队分解,但缺失了对价和传导带的自旋分解的定量度量,以及随之而来的SLG中的低能分散关系 - 我们的合并实验性研究和理论研究填补了这一空隙。
Proximity-induced spin-orbit coupling in graphene has led to the observation of intriguing phenomena like time-reversal invariant $\mathbb{Z}_2$ topological phase and spin-orbital filtering effects. An understanding of the effect of spin-orbit coupling on the band structure of graphene is essential if these exciting observations are to be transformed into real-world applications. In this research article, we report the experimental determination of the band structure of single-layer graphene (SLG) in the presence of strong proximity-induced spin-orbit coupling. We achieve this in high-mobility hBN-encapsulated SLG/WSe2 heterostructures through measurements of quantum oscillations. We observe clear spin-splitting of the graphene bands along with a substantial increase in the Fermi velocity. Using a theoretical model with realistic parameters to fit our experimental data, we uncover evidence of a band gap opening and band inversion in the SLG. Further, we establish that the deviation of the low-energy band structure from pristine SLG is determined primarily by the valley-Zeeman SOC and Rashba SOC, with the Kane-Mele SOC being inconsequential. Despite robust theoretical predictions and observations of band-splitting, a quantitative measure of the spin-splitting of the valence and the conduction bands and the consequent low-energy dispersion relation in SLG was missing -- our combined experimental and theoretical study fills this lacuna.