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Proximity-Induced Spin-Orbit Coupling in Graphene-Bi_(1.5)Sb_(0.5)Te_(1.7)Se_(1.3) Heterostructures

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arxiv 1809.01113 v2 pith:5PAROU2S submitted 2018-09-04 cond-mat.mes-hall

Proximity-Induced Spin-Orbit Coupling in Graphene-Bi$_{1.5}$Sb$_{0.5}$Te$_{1.7}$Se$_{1.3}$ Heterostructures

classification cond-mat.mes-hall
keywords graphenecouplingspin-orbitbstsproximity-inducedcarrierphaseweak
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

The weak intrinsic spin-orbit coupling in graphene can be greatly enhanced by proximity coupling. Here we report on the proximity-induced spin-orbit coupling in graphene transferred by hexagonal boron nitride (hBN) onto the topological insulator Bi$_{1.5}$Sb$_{0.5}$Te$_{1.7}$Se$_{1.3}$ (BSTS) which was grown on a hBN substrate by vapor solid synthesis. Phase coherent transport measurements, revealing weak localization, allow us to extract the carrier density-dependent phase coherence length $l_\phi$. While $l_\phi$ increases with increasing carrier density in the hBN/graphene/hBN reference sample, it decreases in BSTS/graphene due to the proximity-coupling of BSTS to graphene. The latter behavior results from D'yakonov-Perel-type spin scattering in graphene with a large proximity-induced spin-orbit coupling strength of at least 2.5 meV.

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