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Near-Atomic-Scale Mapping of Electronic Phases in Rare Earth Nickelate Superlattices

Mundet, Bernat; Domínguez, Claribel; Fowlie, Jennifer; Gibert, Marta; Triscone, Jean-Marc; Alexander, Duncan T L (2021). Near-Atomic-Scale Mapping of Electronic Phases in Rare Earth Nickelate Superlattices. Nano letters, 21(6):2436-2443.

Abstract

Nanoscale mapping of the distinct electronic phases characterizing the metal–insulator transition displayed by most of the rare-earth nickelate compounds is fundamental for discovering the true nature of this transition and the possible couplings that are established at the interfaces of nickelate-based heterostructures. Here, we demonstrate that this can be accomplished by using scanning transmission electron microscopy in combination with electron energy-loss spectroscopy. By tracking how the O K and Ni L edge fine structures evolve across two different NdNiO3/SmNiO3 superlattices, displaying either one or two metal–insulator transitions depending on the individual layer thickness, we are able to determine the electronic state of each of the individual constituent materials. We further map the spatial configuration associated with their metallic/insulating regions, reaching unit cell spatial resolution. With this, we estimate the width of the metallic/insulating boundaries at the NdNiO3/SmNiO3 interfaces, which is measured to be on the order of four unit cells.

Additional indexing

Item Type:Journal Article, refereed, original work
Communities & Collections:07 Faculty of Science > Physics Institute
Dewey Decimal Classification:530 Physics
Scopus Subject Areas:Physical Sciences > Bioengineering
Physical Sciences > General Chemistry
Physical Sciences > General Materials Science
Physical Sciences > Condensed Matter Physics
Physical Sciences > Mechanical Engineering
Uncontrolled Keywords:Mechanical Engineering, Condensed Matter Physics, General Materials Science, General Chemistry, Bioengineering
Language:English
Date:24 March 2021
Deposited On:11 Jan 2022 13:33
Last Modified:16 Mar 2025 04:34
Publisher:American Chemical Society (ACS)
ISSN:1530-6984
OA Status:Hybrid
Free access at:Publisher DOI. An embargo period may apply.
Publisher DOI:https://doi.org/10.1021/acs.nanolett.0c04538
Project Information:
  • Funder: SNSF
  • Grant ID: PP00P2_170564
  • Project Title: Functional Oxide Heterostructures by Design
  • Funder: SNSF
  • Grant ID: 200020_179155
  • Project Title: Structural and electronic properties of oxide structures and oxide interfaces
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  • Licence: Creative Commons: Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0)

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