Role of NiO in the nonlocal spin transport through thin NiO films on Y3Fe5O12

Autor(en): Hoogeboom, Geert R.
Nicolaas, Geert-Jan N. Sint
Alexander, Andreas
Kuschel, Olga 
Wollschlaeger, Joachim 
Ennen, Inga
van Wees, Bart J.
Kuschel, Timo 
Stichwörter: Materials Science; Materials Science, Multidisciplinary; Physics; Physics, Applied; Physics, Condensed Matter; REFLECTION; SCATTERING; TRANSMISSION
Erscheinungsdatum: 2021
Herausgeber: AMER PHYSICAL SOC
Journal: PHYSICAL REVIEW B
Volumen: 103
Ausgabe: 14
Zusammenfassung: 
In spin-transport experiments with spin currents propagating through an antiferromagnetic (AFM) material, the antiferromagnet is mainly treated as a passive spin conductor not generating nor adding any spin current to the system. The spin current transmissivity of the AFM NiO is affected by magnetic fluctuations, peaking at the Neel temperature and decreasing by lowering the temperature. To study the role of antiferromagnetism in local and nonlocal spin-transport experiments, we send spin currents through NiO of various thicknesses placed on Y3Fe5O12. The spin currents are injected either electrically or by thermal gradients and measured at a wide range of temperatures and magnetic field strengths. The transmissive role is reflected in the sign change of the local electrically injected signals and the decrease in signal strength of all other signals by lowering the temperature. The thermally generated signals, however, show an additional upturn below 100 K that is unaffected by an increased NiO thickness. A change in the thermal conductivity could affect these signals. The temperature and magnetic field dependence are similar to those for bulk NiO, indicating that NiO itself contributes to thermally induced spin currents.
ISSN: 24699950
DOI: 10.1103/PhysRevB.103.144406

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