Tunable unconventional spin orbit torque magnetization dynamics in van der Waals heterostructures.
basic_science · Level V
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- Record sourced from PubMed, PMID 41027903.
- Also identified by DOI 10.1038/s41467-025-64109-3 and PMC identifier 12484963.
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Abstract
Two-dimensional quantum material heterostructures can offer a promising platform for energy-efficient non-volatile spin-based technologies. However, spin dynamics experiments to understand the basic spin-orbit torque phenomena are so far lacking. Here, we demonstrate unconventional out-of-plane magnetization dynamics, and energy-efficient and field-free spin-orbit torque switching in a van der Waals heterostructure comprising out-of-plane magnet Fe<sub>3</sub>GaTe<sub>2</sub> and topological Weyl semimetal TaIrTe<sub>4</sub>. We measured non-linear second harmonic Hall signal in TaIrTe<sub>4</sub>/Fe<sub>3</sub>GaTe<sub>2</sub> devices to evaluate the magnetization dynamics, which is characterized by large and tunable out-of-plane damping-like torque. Energy-efficient and deterministic field-free SOT magnetization switching is achieved at room temperature with a very low current density. First-principles calculations unveil the origin of the unconventional charge-spin conversion phenomena, considering the crystal symmetry and electronic structure of TaIrTe<sub>4</sub>. These results establish that van der Waals heterostructures provide a promising route to energy-efficient, field-free, and tunable spintronic devices.