Sublattice symmetry breaking and ultralow energy excitations in graphene-onh BN heterostructures

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 μ eV ). These low-energy terms i...

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Veröffentlicht in:Physical review. B 2020-12, Vol.102 (24)
Hauptverfasser: Singh, U R, Prada, M, Strenzke, V, Bosnjak, B, Schmirander, T, Tiemann, L, Blick, R H
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Sprache:eng
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Zusammenfassung: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 μ eV ). 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 μ eV , and we confirm an intrinsic spin orbit coupling of approximately 45 μ eV . 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.
ISSN:2469-9950
2469-9969
DOI:10.1103/PhysRevB.102.245134