Spin-orbit proximity effect in graphene

dc.contributor.author Avsar, A.
dc.contributor.author Tan, J. Y.
dc.contributor.author Taychatanapat, T.
dc.contributor.author Balakrishnan, J.
dc.contributor.author Koon, G. K.W.
dc.contributor.author Yeo, Y.
dc.contributor.author Lahiri, J.
dc.contributor.author Carvalho, A.
dc.contributor.author Rodin, A. S.
dc.contributor.author O'Farrell, E. C.T.
dc.contributor.author Eda, G.
dc.contributor.author Castro Neto, A. H.
dc.contributor.author Özyilmaz, B.
dc.date.accessioned 2022-03-27T11:46:03Z
dc.date.available 2022-03-27T11:46:03Z
dc.date.issued 2014-01-01
dc.description.abstract The development of spintronics devices relies on efficient generation of spin-polarized currents and their electric-field-controlled manipulation. While observation of exceptionally long spin relaxation lengths makes graphene an intriguing material for spintronics studies, electric field modulation of spin currents is almost impossible due to negligible intrinsic spin-orbit coupling of graphene. In this work, we create an artificial interface between monolayer graphene and few-layer semiconducting tungsten disulphide. In these devices, we observe that graphene acquires spin-orbit coupling up to 17 meV, three orders of magnitude higher than its intrinsic value, without modifying the structure of the graphene. The proximity spin-orbit coupling leads to the spin Hall effect even at room temperature, and opens the door to spin field effect transistors. We show that intrinsic defects in tungsten disulphide play an important role in this proximity effect and that graphene can act as a probe to detect defects in semiconducting surfaces.
dc.identifier.citation Nature Communications. v.5
dc.identifier.uri 10.1038/ncomms5875
dc.identifier.uri http://www.nature.com/articles/ncomms5875
dc.identifier.uri https://dspace.uohyd.ac.in/handle/1/14678
dc.title Spin-orbit proximity effect in graphene
dc.type Journal. Article
dspace.entity.type
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