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A hybrid optoelectronic Mott insulator

Authors :
Alex Frano
Ivan K. Schuller
Erbin Qiu
Min-Han Lee
Marcelo J. Rozenberg
Coline Adda
H. Navarro
Oleg Shpyrko
Yoav Kalcheim
Nicolás Vargas
J. del Valle
Ivan A. Zaluzhnyy
Pavel N. Lapa
Alberto Rivera-Calzada
University of California [San Diego] (UC San Diego)
University of California
Centre National de la Recherche Scientifique (CNRS)
Université Paris-Saclay
Source :
Applied Physics Letters, Applied Physics Letters, American Institute of Physics, 2021, 118 (14), pp.141901. ⟨10.1063/5.0044066⟩, E-Prints Complutense. Archivo Institucional de la UCM, instname, E-Prints Complutense: Archivo Institucional de la UCM, Universidad Complutense de Madrid
Publication Year :
2021
Publisher :
HAL CCSD, 2021.

Abstract

The coupling of electronic degrees of freedom in materials to create hybridized functionalities is a holy grail of modern condensed matter physics that may produce novel mechanisms of control. Correlated electron systems often exhibit coupled degrees of freedom with a high degree of tunability which sometimes lead to hybridized functionalities based on external stimuli. However, the mechanisms of tunability and the sensitivity to external stimuli are determined by intrinsic material properties which are not always controllable. A Mott metal-insulator transition, which is technologically attractive due to the large changes in resistance, can be tuned by doping, strain, electric fields, and orbital occupancy but cannot be, in and of itself, controlled externally with light. Here we present a new approach to produce hybridized functionalities using a properly engineered photoconductor/strongly-correlated hybrid heterostructure, showing control of the Metal-to-Insulator transition (MIT) using optical means. This approach combines a photoconductor, which does not exhibit an MIT, with a strongly correlated oxide, which is not photoconducting. Due to the close proximity between the two materials, the heterostructure exhibits large volatile and nonvolatile, photoinduced resistivity changes and substantial photoinduced shifts in the MIT transition temperatures. This approach can potentially be extended to other judiciously chosen combinations of strongly correlated materials with systems which exhibit optically, electrically or magnetically controllable behavior.

Details

Language :
English
ISSN :
00036951
Database :
OpenAIRE
Journal :
Applied Physics Letters, Applied Physics Letters, American Institute of Physics, 2021, 118 (14), pp.141901. ⟨10.1063/5.0044066⟩, E-Prints Complutense. Archivo Institucional de la UCM, instname, E-Prints Complutense: Archivo Institucional de la UCM, Universidad Complutense de Madrid
Accession number :
edsair.doi.dedup.....0622b79cd04f1d4723aa9acc94faf121
Full Text :
https://doi.org/10.1063/5.0044066⟩