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In situ transport characterization of magnetic states in Nb/Co superconductor/ferromagnet heterostructures.
Kapran, Olena M; Morari, Roman; Golod, Taras; Borodianskyi, Evgenii A; Boian, Vladimir; Prepelita, Andrei; Klenov, Nikolay; Sidorenko, Anatoli S; Krasnov, Vladimir M.
Afiliação
  • Kapran OM; Department of Physics, Stockholm University, AlbaNova University Center, SE-10691 Stockholm, Sweden.
  • Morari R; Institute of Electronic Engineering and Nanotechnologies, MD2028 Chisinau, Moldova.
  • Golod T; Moscow Institute of Physics and Technology, State University, 141700 Dolgoprudny, Russia.
  • Borodianskyi EA; Department of Physics, Stockholm University, AlbaNova University Center, SE-10691 Stockholm, Sweden.
  • Boian V; Department of Physics, Stockholm University, AlbaNova University Center, SE-10691 Stockholm, Sweden.
  • Prepelita A; Institute of Electronic Engineering and Nanotechnologies, MD2028 Chisinau, Moldova.
  • Klenov N; Institute of Electronic Engineering and Nanotechnologies, MD2028 Chisinau, Moldova.
  • Sidorenko AS; Lomonosov Moscow State University, Faculty of Physics, Moscow, 119991, Russia.
  • Krasnov VM; Moscow Technical University of Communication and Informatics, 111024 Moscow, Russia.
Beilstein J Nanotechnol ; 12: 913-923, 2021.
Article em En | MEDLINE | ID: mdl-34497739
ABSTRACT
Employment of the non-trivial proximity effect in superconductor/ferromagnet (S/F) heterostructures for the creation of novel superconducting devices requires accurate control of magnetic states in complex thin-film multilayers. In this work, we study experimentally in-plane transport properties of microstructured Nb/Co multilayers. We apply various transport characterization techniques, including magnetoresistance, Hall effect, and the first-order-reversal-curves (FORC) analysis. We demonstrate how FORC can be used for detailed in situ characterization of magnetic states. It reveals that upon reduction of the external field, the magnetization in ferromagnetic layers first rotates in a coherent scissor-like manner, then switches abruptly into the antiparallel state and after that splits into the polydomain state, which gradually turns into the opposite parallel state. The polydomain state is manifested by a profound enhancement of resistance caused by a flux-flow phenomenon, triggered by domain stray fields. The scissor state represents the noncollinear magnetic state in which the unconventional odd-frequency spin-triplet order parameter should appear. The non-hysteretic nature of this state allows for reversible tuning of the magnetic orientation. Thus, we identify the range of parameters and the procedure for in situ control of devices based on S/F heterostructures.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article