Interfacial Spin-to-Charge Conversion in Sputtered MoTe2 Heterostructures Probed by Spin Pumping and Spin-Torque Ferromagnetic Resonance
Abstract
Spin-charge conversion in MoTe2 heterostructures is driven primarily by interfacial Rashba-Edelstein effects rather than bulk transport, enabling efficient spin-orbit torques for low-power spintronics.
Transition metal dichalcogenides (TMDs) and their Weyl semimetal phases, such as MoTe_2, have attracted significant attention for spin-orbit torque applications due to their efficient charge-to-spin conversion. However, whether this conversion originates predominantly from the bulk or the interface remains unclear. Here, we investigate spin-charge interconversion in MoTe_2 using spin-pumping and spin-torque ferromagnetic resonance (SP-FMR and ST-FMR). Thickness-dependent measurements reveal large spin-to-charge conversion and spin-torque efficiencies that are essentially independent of MoTe_2 thickness, indicating that the conversion is predominantly governed by the Rashba-Edelstein effect at the Py/MoTe_2 interface rather than by bulk spin transport. This behavior contrasts with the characteristic thickness dependence observed in Pt heterostructures and is further supported by bidirectional SP-FMR and interface-separation measurements. Our results highlight the dominant role of the Py/MoTe_2 interface in enabling efficient spin-charge conversion and spin-orbit torques in TMD-based spintronic devices. These findings highlight the potential of sputtered MoTe_2/Py heterostructures for low-power spintronic applications, including magnetic memory and logic devices.
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