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Sublattice symmetry breaking and ultralow energy excitations in graphene-on-hBN heterostructures

机译:Sublattice对称性在石墨烯-HBN异质结构中断裂和超低能量激发

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摘要

The low-lying states of graphene contain exciting topological properties that depend on the interplay of different symmetry-breaking terms. The corresponding energy gaps remained unexplored until recently due to the low-energy scale of the terms involved (few tens of μeV). These low-energy terms include sublattice splitting, the Rashba coupling, and the intrinsic spin-orbit coupling, whose balance determines the topological properties. In this work, we unravel the contributions arising from the sublattice and the intrinsic spin orbit splitting in graphene on hexagonal boron-nitride. Employing resistively detected electron spin resonance, we identify a sublattice splitting of the order of 20 μeV, and we confirm an intrinsic spin orbit coupling of approximately 45 μeV. The dominance of the latter suggests a topologically nontrivial state, involving fascinating properties. Electron spin resonance is a promising route toward unveiling the intriguing band structure at low-energy scales.
机译:石墨烯的低位状态含有令人兴奋的拓扑特性,取决于不同对称性术语的相互作用。相应的能量间隙仍未探测到最近由于所涉及的术语的低能量规模(几十μEV)。这些低能量术语包括子组分分裂,拉什巴耦合和内在旋转轨道耦合,其平衡决定了拓扑特性。在这项工作中,我们解开了从六边形氮化物上的石墨烯中产生的贡献和石墨烯中的内在旋转轨道分裂。采用电阻检测到的电子自旋共振,我们识别了20μEV的顺序的子分子分裂,并且我们确认了大约45μEV的内在自旋轨道耦合。后者的主导地位表明了一种拓扑非体现状态,涉及迷人的性质。电子自旋共振是在低能量尺度下揭示有趣带结构的有希望的路线。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2020年第24期|245134.1-245134.5|共5页
  • 作者单位

    Center for Hybrid Nanostructures (CHyN) University of Hamburg Lumper Chaussee 149 22607 Hamburg Germany;

    I. Institute for Theoretical Physics University of Hamburg Jungiusstrasse 9-11 20355 Hamburg Germany;

    Center for Hybrid Nanostructures (CHyN) University of Hamburg Lumper Chaussee 149 22607 Hamburg Germany;

    Center for Hybrid Nanostructures (CHyN) University of Hamburg Lumper Chaussee 149 22607 Hamburg Germany;

    I. Institute for Theoretical Physics University of Hamburg Jungiusstrasse 9-11 20355 Hamburg Germany;

    Center for Hybrid Nanostructures (CHyN) University of Hamburg Lumper Chaussee 149 22607 Hamburg Germany;

    Center for Hybrid Nanostructures (CHyN) University of Hamburg Lumper Chaussee 149 22607 Hamburg Germany;

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