Microscopic Spin-Orbit Torque in 3d-5d Transition Metal Bilayers Based on Tight-Binding Model
ORAL
Abstract
Transition metal has attracted much attention both from fundamental physics and practical applications due to either the magnetization of 3d transition metals or strong spin-orbit coupling of 5d ones. Their combination at the interface of 3d-5d transition metal thin films leads to a variety of intriguing emergent phenomena, which are, however, not yet clearly understood. To give a realistic but strongly tunable description of these systems, we theoretically study the electronic structure of 3d and 5d transition-metal thin films by using first-principles' calculation and construct the corresponding tight-binding Hamiltonian on the basis of s, d, and pz orbitals by employing two-center approximation based on Slater-Koster table. Non-linear least square fitting is employed to determine the tight-binding parameters. Based on this microscopic model, we further study the spin-orbit torque at the 3d-5d transition-metal bilayers by non-equilibrium Green's function method.
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Presenters
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Yafei Ren
Physics, Univ of Sci & Tech of China, Univ of Sci & Tech of China
Authors
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Yafei Ren
Physics, Univ of Sci & Tech of China, Univ of Sci & Tech of China
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Junjie Zeng
Univ of Sci & Tech of China
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Tao Hou
Univ of Sci & Tech of China
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Hui Yang
Univ of Sci & Tech of China
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Zhenhua Qiao
Physics, Univ of Sci & Tech of China, Univ of Sci & Tech of China
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Allan MacDonald
Physics department, University of Texas at Austin, Physics, University of Texas, Austin, Department of Physics, The University of Texas at Austin, Physics , Univ of Texas, Austin, Univ of Texas at Austin, Physics, The University of Texas at Austin, Department of Physics, Univerisity of Texas at Austin, The University of Texas at Austin, University of Texas