Spin-orbit torque facilitated switching of Bi<sub>2</sub>Se<sub>3</sub>/NiFe heterostructures
ORAL
Abstract
As worldwide demand for computing grows exponentially and processors become increasingly powerful, the need for memory technologies that are energy efficient, non-volatile and capable of ultrafast read/write operations is urgent. One promising technique is the use of materials with spin-orbit coupling to control magnetic layers using spin-orbit torque. In this talk I will discuss our group’s ongoing work to leverage spin-momentum locking in topological insulators to manipulate magnets, as measured using Kerr Rotation and using both pulsed and DC current modalities. I will focus on recent results in which we have switched the in-plane moment of a NiFe layer in a Bi2Se3/NiFe structure in which the Bi2Se3 has been specially engineered to be bulk insulating, maximizing the spin-momentum locking in the charge current. We find that we are able to switch the NiFe layer using a current density in the Bi2Se3 more than an order of magnitude lower than required in more commonly used heavy metals. I will contextualize these results with transport and spin-torque ferromagnetic resonance measurements before closing with some discussion of future work.
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Presenters
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Mehmet A Noyan
United States Naval Research Laboratory
Authors
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Mehmet A Noyan
United States Naval Research Laboratory
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Olaf M Van T Erve
United States Naval Research Laboratory
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Connie H Li
United States Naval Research Laboratory
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Xiaohang Zhang
Department of Materials Science and Engineering, University of Maryland, College Park, MD 20742, USA, Nova Research, University of Maryland
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Enrique Cobas
United States Naval Research Laboratory
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Jisoo Moon
US NAVAL RESEARSCH LABORATORY, NRC Postdoctoral Fellow at the Naval Research Laboratory, Rutgers University, New Brunswick
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Berend T Jonker
United States Naval Research Laboratory