Optimal field-free magnetization switching via spin-orbit torque on the surface of a topological insulator
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We present an optimal field-free protocol for current-induced switching of a perpendicularly magnetized ferromagnetic insulator nanoelement on the surface of a topological insulator. The time dependence of in-plane components of the surface current, which drives the magnetization reversal via the Dirac spin-orbit torque with minimal Joule heating, is derived analytically as a function of the switching time and material properties. Our analysis identifies that energy-efficient switching is achieved for vanishing damping-like torque. The optimal reversal time that balances switching speed and energy efficiency is determined. When we compare topological insulators to heavy-metal systems, we find similar switching costs for the optimal ratio between the spin-orbit torque coefficients. However, topological insulators offer the advantage of tunable material properties. Finally, we propose a robust and efficient simplified switching protocol using a down-chirped rotating current pulse, tailored to realistic ferromagnetic/topological insulator systems.
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Publisher Copyright: © The Author(s) 2025.
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Electronic, Optical and Magnetic Materials, Materials Science (miscellaneous), Condensed Matter Physics, Surfaces and Interfaces
Citation
Miranda, I P, Kwiatkowski, G J, Holmqvist, C M, Canali, C M, Lobanov, I S, Uzdin, V M, Manolescu, A, Bessarab, P F & Erlingsson, S I 2025, 'Optimal field-free magnetization switching via spin-orbit torque on the surface of a topological insulator', npj Spintronics, vol. 3, no. 1, 21. https://doi.org/10.1038/s44306-025-00085-0