Tunable room-temperature spin galvanic and spin Hall effects in van der Waals heterostructures
Benitez, L. Antonio; Savero Torres, Williams; Sierra, Juan F.; Timmermans, Matias; Garcia, Jose H.; Roche, Stephan; Costache, Marius V.; Valenzuela, Sergio O.
NATURE MATERIALS
2020
VL / 19 - BP / 170 - EP / +
abstract
Spin-orbit coupling stands as a powerful tool to interconvert charge and spin currents and to manipulate the magnetization of magnetic materials through spin-torque phenomena. However, despite the diversity of existing bulk materials and the recent advent of interfacial and low-dimensional effects, control of this interconversion at room temperature remains elusive. Here, we demonstrate strongly enhanced room-temperature spin-to-charge interconversion in graphene driven by the proximity of WS2. By performing spin precession experiments in appropriately designed Hall bars, we separate the contributions of the spin Hall and the spin galvanic effects. Remarkably, their corresponding conversion efficiencies can be tailored by electrostatic gating in magnitude and sign, peaking near the charge neutrality point with an equivalent magnitude that is comparable to the largest efficiencies reported to date. Such electric-field tunability provides a building block for spin generation free from magnetic materials and for ultra-compact magnetic memory technologies. Enhanced spin-charge conversion in graphene is realized by proximity coupling to WS2 and electric-field tunability is demonstrated.
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