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      Effective spin-mixing conductance of heavy-metal/ferromagnet interfaces

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          Abstract

          The effective spin-mixing conductance (G_eff) of a heavy metal/ferromagnet (HM/FM) interface characterizes the efficiency of the interfacial spin transport.Accurately determining G_eff is critical to the quantitative understanding of measurements of direct and inverse spin Hall effects. G_eff is typically ascertained from the inverse dependence of magnetic damping on the FM thickness under the assumption that spin pumping is the dominant mechanism affecting this dependence.Here we report that, this assumption fails badly in many in-plane magnetized prototypical HM/FM systems in the nm-scale thickness regime. Instead, the majority of the damping is from two-magnon scattering at the FM interface, while spin-memory-loss scattering at the interface can also be significant.If these two effects are neglected, the results will be an unphysical "giant" apparent G_eff and hence considerable underestimation of both the spin Hall ratio and the spin Hall conductivity in inverse/direct spin Hall experiments.

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          Interplay of spin-orbit torque and thermoelectric effects in ferromagnet/normal-metal bilayers

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            First-principles study of magnetization relaxation enhancement and spin transfer in thin magnetic films

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              Role of electron scattering in the magnetization relaxation of thin\({\mathrm{Ni}}_{81}{\mathrm{Fe}}_{19}\)films

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                Author and article information

                Journal
                04 May 2019
                Article
                1905.01577
                29543313-843a-420d-bf2e-b2501e2d87cc

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                cond-mat.mtrl-sci cond-mat.mes-hall

                Condensed matter,Nanophysics
                Condensed matter, Nanophysics

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