arXiv · 1610.07196
Graphene-WS$_2$ heterostructures for tunable spin injection and spin transport
Abstract
We report the first measurements of spin injection in to graphene through a 20 nm thick tungsten disulphide (WS$_2$) layer, along with a modified spin relaxation time (τs) in graphene in the WS$_2$ environment, via spin-valve and Hanle spin-precession measurements, respectively. First, during the spin-injection into graphene through a WS$_2$-graphene interface, we can tune the interface resistance at different current bias and modify the spin injection efficiency, in a correlation with the conductivity-mismatch theory. Temperature assisted tunneling is identified as a dominant mechanism for the charge transport across the interface. Second, we measure the spin transport in graphene, underneath the WS$_2$ crystal and observe a significant reduction in the τs down to 17 ps in graphene in the WS$_2$ covered region, compared to that in its pristine state. The reduced τs indicates the WS$_2$-proximity induced additional dephasing of the spins in graphene.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Siddhartha Omar, Bart J. van Wees. 2017-01-26. Graphene-WS$_2$ heterostructures for tunable spin injection and spin transport. https://doi.org/10.1103/physrevb.95.081404
Cite the original work for its findings. Save a collection to share your selection of sources.