Bi2Se3 interlayer treatments affecting the Y3Fe5O12 (YIG) platinum spin Seebeck effect

Author:

Hu Yaoyang1ORCID,Weir Michael P.2ORCID,Pereira H. Jessica13ORCID,Amin Oliver J.2ORCID,Pitcairn Jem4ORCID,Cliffe Matthew J.4ORCID,Rushforth Andrew W.2ORCID,Kunakova Gunta5ORCID,Niherysh Kiryl5ORCID,Korolkov Vladimir6,Kertfoot James6,Makarovsky Oleg2ORCID,Woodward Simon1ORCID

Affiliation:

1. GSK Carbon Neutral Laboratories for Sustainable Chemistry, University of Nottingham 1 , Jubilee Campus, Nottingham NG7 2TU, United Kingdom

2. School of Physics and Astronomy, University of Nottingham 2 , Nottingham NG7 2RD, United Kingdom

3. School of Electronics and Computer Science, University of Southampton 3 , Southampton SO17 1BJ, United Kingdom

4. School of Chemistry, University of Nottingham 4 , University Park Campus, Nottingham NG7 2RD, United Kingdom

5. Institute of Chemical Physics, University of Latvia 5 , LV-1586 Riga, Latvia

6. Park Systems UK Limited 6 , MediCity Nottingham, Thane Road, Nottingham NG90 6BH, United Kingdom

Abstract

In this work, we present a method to enhance the longitudinal spin Seebeck effect at platinum/yttrium iron garnet (Pt/YIG) interfaces. The introduction of a partial interlayer of bismuth selenide (Bi2Se3, 2.5% surface coverage) interfaces significantly increases (by ∼380%–690%) the spin Seebeck coefficient over equivalent Pt/YIG control devices. Optimal devices are prepared by transferring Bi2Se3 nanoribbons, prepared under anaerobic conditions, onto the YIG (111) chips followed by rapid over-coating with Pt. The deposited Pt/Bi2Se3 nanoribbon/YIG assembly is characterized by scanning electron microscope. The expected elemental compositions of Bi2Se3 and YIG are confirmed by energy dispersive x-ray analysis. A spin Seebeck coefficient of 0.34–0.62 μV/K for Pt/Bi2Se3/YIG is attained for our devices, compared to just 0.09 μV/K for Pt/YIG controls at a 12 K thermal gradient and a magnetic field swept from −50 to +50 mT. Superconducting quantum interference device magnetometer studies indicate that the magnetic moment of Pt/Bi2Se3/YIG treated chips is increased by ∼4% vs control Pt/YIG chips (i.e., a significant increase vs the ±0.06% chip mass reproducibility). Increased surface magnetization is also detected in magnetic force microscope studies of Pt/Bi2Se3/YIG, suggesting that the enhancement of spin injection is associated with the presence of Bi2Se3 nanoribbons.

Funder

Engineering and Physical Sciences Research Council

University of Nottingham

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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