Impact of strain on the SOT-driven dynamics of thin film Mn$_3$Sn
Ankit Shukla, Siyuan Qian, and Shaloo Rakheja

TL;DR
This study explores how uniaxial tensile strain influences the spin orbit-torque driven switching and oscillatory behavior of the antiferromagnetic material Mn$_3$Sn, providing insights for future spintronic applications.
Contribution
It presents a combined numerical and analytical investigation of strain effects on SOT-driven dynamics in Mn$_3$Sn, including critical currents and oscillation frequencies.
Findings
Critical currents depend on magnetic field and damping constant.
Order parameter can be switched or made to oscillate by tuning current.
Analytical expressions match well with numerical simulations.
Abstract
MnSn, a metallic antiferromagnet with an anti-chiral 120 spin structure, generates intriguing magneto-transport signatures such as a large anomalous Hall effect, spin-polarized current with novel symmetries, anomalous Nernst effect, and magneto-optic Kerr effect. When grown epitaxially as MgO(110)[001] MnSn()[0001], MnSn experiences a uniaxial tensile strain, which changes the bulk six-fold anisotropy landscape to a perpendicular magnetic anisotropy with two stable states. In this work, we investigate the field-assisted spin orbit-torque (SOT)-driven response of the order parameter in single-domain MnSn with uniaxial tensile strain. We find that for a non-zero external magnetic field, the order parameter can be switched between the two stable states if the magnitude of the input current is between two field-dependent critical…
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Taxonomy
TopicsAcoustic Wave Resonator Technologies · Copper Interconnects and Reliability · Fluid Dynamics and Thin Films
