Analytical electron microscopy analysis of insulating and metallic phases in nanostructured vanadium dioxide

Fuente: arXiv
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Hauptverfasser: Krpenský, Jan, Horák, Michal, Kabát, Jiří, Planer, Jakub, Kepič, Peter, Křápek, Vlastimil, Konečná, Andrea
Format: Preprint
Veröffentlicht: 2023
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author Krpenský, Jan
Horák, Michal
Kabát, Jiří
Planer, Jakub
Kepič, Peter
Křápek, Vlastimil
Konečná, Andrea
author_facet Krpenský, Jan
Horák, Michal
Kabát, Jiří
Planer, Jakub
Kepič, Peter
Křápek, Vlastimil
Konečná, Andrea
contents Vanadium dioxide (VO$_2$) is a strongly-correlated material that exhibits insulator-to-metal transition (IMT) near room temperature, which makes it a promising candidate for applications in nanophotonics or optoelectronics. However, creating VO$_2$ nanostructures with the desired functionality can be challenging due to microscopic inhomogeneities that can significantly impact the local optical and electronic properties. Thin lamellas, produced by focused ion beam milling from a homogeneous layer, provide a useful prototype for studying VO$_2$ at the truly microscopic level using a scanning transmission electron microscope (STEM). High-resolution imaging is used to identify structural inhomogeneities while electron energy-loss spectroscopy (EELS) supported by statistical analysis helps to detect V$_x$O$_y$ stoichiometries with a reduced oxidation number of vanadium at the areas of thickness below 70 nm. On the other hand, the thicker areas are dominated by vanadium dioxide, where the signatures of IMT are detected in both core-loss and low-loss EELS experiments with in-situ heating. The experimental results are interpreted with ab-initio and semi-classical calculations. This work shows that structural inhomogeneities such as pores and cracks present no harm to the desired optical properties of VO$_2$ samples.
format Preprint
id arxiv_https___arxiv_org_abs_2309_11980
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Analytical electron microscopy analysis of insulating and metallic phases in nanostructured vanadium dioxide
Krpenský, Jan
Horák, Michal
Kabát, Jiří
Planer, Jakub
Kepič, Peter
Křápek, Vlastimil
Konečná, Andrea
Materials Science
Vanadium dioxide (VO$_2$) is a strongly-correlated material that exhibits insulator-to-metal transition (IMT) near room temperature, which makes it a promising candidate for applications in nanophotonics or optoelectronics. However, creating VO$_2$ nanostructures with the desired functionality can be challenging due to microscopic inhomogeneities that can significantly impact the local optical and electronic properties. Thin lamellas, produced by focused ion beam milling from a homogeneous layer, provide a useful prototype for studying VO$_2$ at the truly microscopic level using a scanning transmission electron microscope (STEM). High-resolution imaging is used to identify structural inhomogeneities while electron energy-loss spectroscopy (EELS) supported by statistical analysis helps to detect V$_x$O$_y$ stoichiometries with a reduced oxidation number of vanadium at the areas of thickness below 70 nm. On the other hand, the thicker areas are dominated by vanadium dioxide, where the signatures of IMT are detected in both core-loss and low-loss EELS experiments with in-situ heating. The experimental results are interpreted with ab-initio and semi-classical calculations. This work shows that structural inhomogeneities such as pores and cracks present no harm to the desired optical properties of VO$_2$ samples.
title Analytical electron microscopy analysis of insulating and metallic phases in nanostructured vanadium dioxide
topic Materials Science
url https://arxiv.org/abs/2309.11980