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Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate

Vanadium dioxide (VO(2)) is one of the extensively studied strongly correlated oxides due to its intriguing insulator–metal transition near room temperature. In this work, we investigated temperature-dependent nanoscale conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate using cond...

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Autores principales: Kim, Ahyoung, Lim, Soo Yeon, Park, Jung Hyun, Chung, Jin-Seok, Cheong, Hyeonsik, Ko, Changhyun, Yoon, Jong-Gul, Yang, Sang Mo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9379556/
https://www.ncbi.nlm.nih.gov/pubmed/36090401
http://dx.doi.org/10.1039/d2ra02803d
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author Kim, Ahyoung
Lim, Soo Yeon
Park, Jung Hyun
Chung, Jin-Seok
Cheong, Hyeonsik
Ko, Changhyun
Yoon, Jong-Gul
Yang, Sang Mo
author_facet Kim, Ahyoung
Lim, Soo Yeon
Park, Jung Hyun
Chung, Jin-Seok
Cheong, Hyeonsik
Ko, Changhyun
Yoon, Jong-Gul
Yang, Sang Mo
author_sort Kim, Ahyoung
collection PubMed
description Vanadium dioxide (VO(2)) is one of the extensively studied strongly correlated oxides due to its intriguing insulator–metal transition near room temperature. In this work, we investigated temperature-dependent nanoscale conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate using conductive-atomic force microscopy (C-AFM). We observed that only the regions near the grain boundaries are conductive, producing intriguing donut patterns in C-AFM images. Such donut patterns were observed in the entire measured temperature range (300–355 K). The current values near the grain boundaries increased by approximately two orders of magnitude with an increase in the temperature, which is consistent with the macroscopic transport data. The spatially-varied conduction behavior is ascribed to the coexistence of different monoclinic phases, i.e., M1 and M2 phases, based on the results of temperature-dependent Raman spectroscopy. Furthermore, we investigated the conduction mechanism in the relatively conductive M1 phase regions at room temperature using current–voltage (I–V) spectroscopy and deep data analysis. Bayesian linear unmixing and k-means clustering showed three distinct types of conduction behavior, which classical C-AFM cannot resolve. We found that the conduction in the M1 phase regions can be explained by the Poole–Frenkel mechanism. This work provides deep insight into IMT behavior in the epitaxial VO(2) thin film at the nanoscale, especially the coexistence and evolution of the M1 and M2 phases. This work also highlights that I–V spectroscopy combined with deep data analysis is very powerful in investigating local transport in complex oxides and various material systems.
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spelling pubmed-93795562022-09-08 Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate Kim, Ahyoung Lim, Soo Yeon Park, Jung Hyun Chung, Jin-Seok Cheong, Hyeonsik Ko, Changhyun Yoon, Jong-Gul Yang, Sang Mo RSC Adv Chemistry Vanadium dioxide (VO(2)) is one of the extensively studied strongly correlated oxides due to its intriguing insulator–metal transition near room temperature. In this work, we investigated temperature-dependent nanoscale conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate using conductive-atomic force microscopy (C-AFM). We observed that only the regions near the grain boundaries are conductive, producing intriguing donut patterns in C-AFM images. Such donut patterns were observed in the entire measured temperature range (300–355 K). The current values near the grain boundaries increased by approximately two orders of magnitude with an increase in the temperature, which is consistent with the macroscopic transport data. The spatially-varied conduction behavior is ascribed to the coexistence of different monoclinic phases, i.e., M1 and M2 phases, based on the results of temperature-dependent Raman spectroscopy. Furthermore, we investigated the conduction mechanism in the relatively conductive M1 phase regions at room temperature using current–voltage (I–V) spectroscopy and deep data analysis. Bayesian linear unmixing and k-means clustering showed three distinct types of conduction behavior, which classical C-AFM cannot resolve. We found that the conduction in the M1 phase regions can be explained by the Poole–Frenkel mechanism. This work provides deep insight into IMT behavior in the epitaxial VO(2) thin film at the nanoscale, especially the coexistence and evolution of the M1 and M2 phases. This work also highlights that I–V spectroscopy combined with deep data analysis is very powerful in investigating local transport in complex oxides and various material systems. The Royal Society of Chemistry 2022-08-16 /pmc/articles/PMC9379556/ /pubmed/36090401 http://dx.doi.org/10.1039/d2ra02803d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kim, Ahyoung
Lim, Soo Yeon
Park, Jung Hyun
Chung, Jin-Seok
Cheong, Hyeonsik
Ko, Changhyun
Yoon, Jong-Gul
Yang, Sang Mo
Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate
title Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate
title_full Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate
title_fullStr Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate
title_full_unstemmed Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate
title_short Nanoscale mapping of temperature-dependent conduction in an epitaxial VO(2) film grown on an Al(2)O(3) substrate
title_sort nanoscale mapping of temperature-dependent conduction in an epitaxial vo(2) film grown on an al(2)o(3) substrate
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9379556/
https://www.ncbi.nlm.nih.gov/pubmed/36090401
http://dx.doi.org/10.1039/d2ra02803d
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