Literature DB >> 31483597

Effect of Interfacial Roughness Spin Scattering on the Spin Current Transport in YIG/NiO/Pt Heterostructures.

Lichuan Jin1, Kancheng Jia1, Dainan Zhang1, Bo Liu2, Hao Meng2, Xiaoli Tang1, Zhiyong Zhong1, Huaiwu Zhang1.   

Abstract

Interfacial properties play a vital role in spin current injection from the ferromagnetic (FM) layer into the nonmagnetic (NM) layer. So far, impedance matching and spin-orbit coupling are two important, well-known factors in spin current transport in FM/NM heterostructures. In this work, the spin current transport in Y3Fe5O12 (YIG)/NiO/Pt heterostructures was investigated by spin Hall magnetoresistance and inverse spin Hall effect measurements. By inserting a layer of antiferromagnetic insulator NiO, the magnetic proximity effect affecting the Pt atoms owing to YIG and the anomalous spin Hall voltage can be efficiently blocked. Ferromagnetic resonance and spin pumping measurements verified that the ferromagnetic/antiferromagnetic exchange coupling inhibits transmission of the spin current at the YIG/NiO interface when the NiO layer is thick. Atomic force microscopy and spherical aberration-corrected transmission electron microscopy proved that the strong interfacial roughness-enhanced spin scattering between NiO and Pt can greatly increase both the inverse spin Hall voltage and the spin Hall magnetoresistance when the NiO layer is thin or even discontinuous. This interface roughness-dominated spin scattering mechanism based on the YIG/NiO/Pt heterostructure is a new discovery, and there is significant potential for exploiting this mechanism in the construction of low-dissipation spintronic devices with an efficient spin current injection.

Entities:  

Keywords:  YIG/NiO/Pt heterostructures; exchange coupling; interfacial spin scattering; inverse spin Hall voltage; spin Hall magnetoresistance

Year:  2019        PMID: 31483597     DOI: 10.1021/acsami.9b12125

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  1 in total

1.  Atomic Scale Control of Spin Current Transmission at Interfaces.

Authors:  Mohamed Amine Wahada; Ersoy Şaşıoğlu; Wolfgang Hoppe; Xilin Zhou; Hakan Deniz; Reza Rouzegar; Tobias Kampfrath; Ingrid Mertig; Stuart S P Parkin; Georg Woltersdorf
Journal:  Nano Lett       Date:  2022-04-20       Impact factor: 12.262

  1 in total

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