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Control of Mooij correlations at the nanoscale in the disordered metallic Ta–nanoisland FeNi multilayers

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posted on 2021-02-04, 14:05 authored by NN Kovaleva, Feodor Kusmartsev, AB Mekhiya, IN Trunkin, D Chvostova, AB Davydov, LN Oveshnikov, O Pacherova, IA Sherstnev, Anna KusmartsevaAnna Kusmartseva, KI Kugel, A Dejneka, FA Pudonin, Y Luo, BA Aronzon
© 2020, The Author(s). Localisation phenomena in highly disordered metals close to the extreme conditions determined by the Mott-Ioffe-Regel (MIR) limit when the electron mean free path is approximately equal to the interatomic distance is a challenging problem. Here, to shed light on these localisation phenomena, we studied the dc transport and optical conductivity properties of nanoscaled multilayered films composed of disordered metallic Ta and magnetic FeNi nanoisland layers, where ferromagnetic FeNi nanoislands have giant magnetic moments of 103–105 Bohr magnetons (μB). In these multilayered structures, FeNi nanoisland giant magnetic moments are interacting due to the indirect exchange forces acting via the Ta electron subsystem. We discovered that the localisation phenomena in the disordered Ta layer lead to a decrease in the Drude contribution of free charge carriers and the appearance of the low-energy electronic excitations in the 1–2 eV spectral range characteristic of electronic correlations, which may accompany the formation of electronic inhomogeneities. From the consistent results of the dc transport and optical studies we found that with an increase in the FeNi layer thickness across the percolation threshold evolution from the superferromagnetic to ferromagnetic behaviour within the FeNi layer leads to the delocalisation of Ta electrons from the associated localised electronic states. On the contrary, we discovered that when the FeNi layer is discontinuous and represented by randomly distributed superparamagnetic FeNi nanoislands, the Ta layer normalized dc conductivity falls down below the MIR limit by about 60%. The discovered effect leading to the dc conductivity fall below the MIR limit can be associated with non-ergodicity and purely quantum (many-body) localisation phenomena, which need to be challenged further.

Funding

Czech Science Foundation (Project No. 20-21864S)

European Structural and Investment Funds and the Czech Ministry of Education, Youth, and Sports (Project No. SOLID21, CZ.02. 1.01/0.0/0.0/16_019/0000760)

Russian Foundation for Basic Research (projects Nos. 19-02-00509 and 20-02-00015)

History

School

  • Science

Department

  • Physics

Published in

Scientific Reports

Volume

10

Issue

1

Publisher

Nature

Version

  • VoR (Version of Record)

Rights holder

© The authors

Publisher statement

This is an Open Access Article. It is published by Nature under the Creative Commons Attribution 4.0 Unported Licence (CC BY). Full details of this licence are available at: http://creativecommons.org/licenses/by/4.0/

Acceptance date

2020-11-17

Publication date

2020-12-03

Copyright date

2020

Notes

29 pages, 8 figures, submitted to the NPG journal

eISSN

2045-2322

Language

  • en

Depositor

Dr Anna Kusmartseva. Deposit date: 2 February 2021

Article number

21172

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