Enhanced controllable triplet proximity effect in superconducting spin–orbit coupled spin valves with modified superconductor/ferromagnet interfaces

Author:

Bregazzi A. T.1ORCID,Ouassou J. A.2ORCID,Coveney A. G. T.1ORCID,Stelmashenko N. A.3,Child A.1,N'Diaye A. T.4ORCID,Robinson J. W. A.3ORCID,Dejene F. K.1ORCID,Linder J.2ORCID,Banerjee N.15ORCID

Affiliation:

1. Department of Physics, Loughborough University 1 , Loughborough LE11 3TU, United Kingdom

2. Center for Quantum Spintronics, Norwegian University of Science and Technology 2 , Trondheim, Norway

3. Department of Materials Science & Metallurgy, University of Cambridge 3 , 27 Charles Babbage Road, Cambridge CB3 0FS, United Kingdom

4. Advanced Light Source, Lawrence Berkeley National Laboratory 4 , Berkeley, California 94720, USA

5. Department of Physics, Blackett Laboratory, Imperial College London 5 , London SW7 2AZ, United Kingdom

Abstract

In a superconductor/ferromagnet hybrid, a magnetically controlled singlet-to-triplet Cooper pair conversion can modulate the superconducting critical temperature. In these triplet superconducting spin valves, such control usually requires inhomogeneous magnetism. However, in the presence of spin–orbit coupling from an interfacial heavy metal layer, the singlet/triplet conversion rate and, thus, critical temperature can be controlled via the magnetization direction of a single homogeneous ferromagnet. Here, we report significantly enhanced controllable pair conversion to a triplet state in a Nb/Pt/Co/Pt superconducting spin valve in which Pt/Co/Pt is homogenously magnetized and proximity-coupled to a superconducting layer of Nb. The Co/Pt interface furthest away from Nb is modified by a sub-nanometer-thick layer of Cu or Au. We argue that the enhancement is most likely associated from an improvement of the Co/Pt interface due to the insertion of Cu and Au layers. Additionally, the higher normalized orbital moments in Au measured using x-ray magnetic circular dichroism shows that increasing spin–orbit coupling enhances the triplet proximity effect—an observation supported by our theoretical calculations. Our results provide a pathway to enhancing triplet pair creation by interface engineering for device development in superspintronics.

Funder

Engineering and Physical Sciences Research Council

Research Council Norway

Sigma 2 - National Infrastructure for High performance Computing and Data Storage in Norway

Publisher

AIP Publishing

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