Obtaining bulk-like correlated oxide surfaces with protective caps

A Amit Cohen (Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,) M Maria Baskin (Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,) L Lishai Shoham (Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,) S Shaked Caspi (Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,) P Pini Shekhter (Wolfson Applied Materials Research Centre, Tel Aviv University 3 , Tel Aviv,) T Tien-Lin Lee (Diamond Light Source Ltd., Diamond House) S Scott A. Chambers (Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory 5 , Richland, Washington 99352,) L Lior Kornblum (Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,)

Abstract

Functional oxides exhibit a diverse range of correlated electron phenomena, some of which are highly attractive for novel electronic, magnetic, and optical devices. Despite decades of advancement of our fundamental understanding of these materials, they consistently fall short of realizing their promise in functional devices. We identify a significant bottleneck toward device realization to be surface overoxidation. Protective caps can effectively prevent overoxidation, but their interfaces with functional oxides are not well understood. These interfaces are critical for effectively using functional oxides in field-effect devices, where “the interface is the device.” This work addresses the chemistry and physics of the interface between protective caps and the correlated metal SrVO3, a model functional oxide. Our comparison of five different cap materials reveals effective protection and similar SrVO3 surface chemistry in all cases. Systematic comparisons of surface and bulk-sensitive photoelectron spectra reveal that negligible interface redox takes place, elucidating the cap-SrVO3 interface chemistry. This work demonstrates a robust and simple solution to the surface overoxidation problem in vanadates, paving the way toward effectively using these materials in field-effect devices. Our conclusions are general and can be applied to numerous other systems, thus moving oxide electronics closer to the realization of functional devices.

Article Details

Volume / Issue Vol. 126, Issue 16
Published April 21, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (8)

A

Amit Cohen

Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,

M

Maria Baskin

Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,

L

Lishai Shoham

Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,

S

Shaked Caspi

Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,

P

Pini Shekhter

Wolfson Applied Materials Research Centre, Tel Aviv University 3 , Tel Aviv,

T

Tien-Lin Lee

Diamond Light Source Ltd., Diamond House

S

Scott A. Chambers

Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory 5 , Richland, Washington 99352,

L

Lior Kornblum

Andrew and Erna Viterbi Department of Electrical and Computer Engineering, Technion—Israel Institute of Technology 1 , Haifa 32000-03,