Raw Data Library
About
Aims and ScopeAdvisory Board Members
More
Who We Are?
User Guide
Green Science
​
​
EN
Kurumsal BaşvuruSign inGet started
​
​

About
Aims and ScopeAdvisory Board Members
More
Who We Are?
User GuideGreen Science

Language

Kurumsal Başvuru

Sign inGet started
RDL logo

Verified research datasets. Instant access. Built for collaboration.

Navigation

About

Aims and Scope

Advisory Board Members

More

Who We Are?

Contact

Add Raw Data

User Guide

Legal

Privacy Policy

Terms of Service

Support

Got an issue? Email us directly.

Email: info@rawdatalibrary.netOpen Mail App
​
​

© 2026 Raw Data Library. All rights reserved.
PrivacyTermsContact
  1. Raw Data Library
  2. /
  3. Publications
  4. /
  5. Orbital control of metal-to-insulator transition in high-entropy nickelates

Verified authors • Institutional access • DOI aware
50,000+ researchers120,000+ datasets90% satisfaction
Article
en
2023

Orbital control of metal-to-insulator transition in high-entropy nickelates

0 Datasets

0 Files

en
2023
Vol 7 (11)
Vol. 7
DOI: 10.1103/physrevmaterials.7.115802

Get instant academic access to this publication’s datasets.

Create free accountHow it works

Frequently asked questions

Is access really free for academics and students?

Yes. After verification, you can browse and download datasets at no cost. Some premium assets may require author approval.

How is my data protected?

Files are stored on encrypted storage. Access is restricted to verified users and all downloads are logged.

Can I request additional materials?

Yes, message the author after sign-up to request supplementary files or replication code.

Advance your research today

Join 50,000+ researchers worldwide. Get instant access to peer-reviewed datasets, advanced analytics, and global collaboration tools.

Get free academic accessLearn more
✓ Immediate verification • ✓ Free institutional access • ✓ Global collaboration
Access Research Data

Join our academic network to download verified datasets and collaborate with researchers worldwide.

Get Free Access
Institutional SSO
Secure
This PDF is not available in different languages.
No localized PDFs are currently available.
Lin Gu
Lin Gu

Institution not specified

Verified
Ting Cui
Ting Lin
Qiao Jin
+11 more

Abstract

High-entropy materials have emerged as a promising platform for exploring unique electronic and structural properties. In this study we investigated the orbital control of the metal-to-insulator transition in thin films of high-entropy nickelates, which are composed of five rare-earth elements in equiatomic concentrations. By manipulating the levels of misfit strain through substrate choice and film thickness, we modulated the electronic properties and examined the intricate interplay between strain, orbital interactions, and the metal-to-insulator transition. Compared to other nickelate thin films such as $\mathrm{NdNi}{\mathrm{O}}_{3}$ and $\mathrm{SmNi}{\mathrm{O}}_{3}$, thin films of high-entropy nickelates exhibited remarkable resilience in maintaining control over their transport properties and orbital polarization, even in the presence of considerable A-site disorder. This finding suggests that the electronic properties of A-site disordered high-entropy nickelates are still governed by the electronic bandwidth, primarily influenced by the Ni-O bonding geometry. This study provides valuable insights into the complex interplay among composition, structure, and electronic properties in perovskite oxides. These insights have the potential to guide the development of perovskite oxide materials with tailored electronic properties for a wide range of applications.

How to cite this publication

Ting Cui, Ting Lin, Qiao Jin, Shengru Chen, Haitao Hong, Qinghua Zhang, Yiyan Fan, Dongke Rong, Jiaou Wang, Can Wang, Lin Gu, Kuijuan Jin, Le Wang, Er‐Jia Guo (2023). Orbital control of metal-to-insulator transition in high-entropy nickelates. , 7(11), DOI: https://doi.org/10.1103/physrevmaterials.7.115802.

Related publications

Why join Raw Data Library?

Quality

Datasets shared by verified academics with rich metadata and previews.

Control

Authors choose access levels; downloads are logged for transparency.

Free for Academia

Students and faculty get instant access after verification.

Publication Details

Type

Article

Year

2023

Authors

14

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1103/physrevmaterials.7.115802

Join Research Community

Access datasets from 50,000+ researchers worldwide with institutional verification.

Get Free Access