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research article

Defect-induced magnetism in homoepitaxial SrTiO3

Rata, A. D.
•
Herrero-Martin, J.
•
Maznichenko, I., V
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September 1, 2022
Apl Materials

Along with recent advancements in thin-film technologies, the engineering of complex transition metal oxide heterostructures offers the possibility of creating novel and tunable multifunctionalities. A representative complex oxide is the perovskite strontium titanate (STO), whose bulk form is nominally a centrosymmetric paraelectric band insulator. By tuning the electron doping, chemical stoichiometry, strain, and charge defects of STO, it is possible to control the electrical, magnetic, and thermal properties of such structures. Here, we demonstrate tunable magnetism in atomically engineered STO thin films grown on STO (001) substrates by controlling the atomic charge defects of titanium (V-Ti) and oxygen (V-O) vacancies. Our results show that the magnetism can be tuned by altering the growth conditions. We provide deep insights into its association to the following defect types: (i) V-Ti, resulting in a charge rearrangement and local spin polarization, (ii) V-O, leading to weak magnetization, and (iii) V-Ti-V-O pairs, which lead to the appearance of a sizable magnetic signal. Our results suggest that controlling charged defects is critical for inducing a net magnetization in STO films. This work provides a crucial step for designing magnetic STO films via defect engineering for magnetic and spin-based electronic applications. (C) 2022 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license(http://creativecommons.org/licenses/by/4.0/)

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Type
research article
DOI
10.1063/5.0101411
Web of Science ID

WOS:000876213200002

Author(s)
Rata, A. D.
Herrero-Martin, J.
Maznichenko, I., V
Chiabrera, F. M.
Dahm, R. T.
Ostanin, S.
Lee, D.
Jalan, B.
Buczek, P.
Mertig, I
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Date Issued

2022-09-01

Publisher

AIP Publishing

Published in
Apl Materials
Volume

10

Issue

9

Article Number

091108

Subjects

Nanoscience & Nanotechnology

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Materials Science, Multidisciplinary

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Physics, Applied

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Science & Technology - Other Topics

•

Materials Science

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Physics

•

room-temperature ferroelectricity

•

growth

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ferromagnetism

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conductivity

•

films

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
NANOLAB  
Available on Infoscience
November 21, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/192502
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