Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2

A seemingly simple oxide with a rutile structure, RuO2, has been shown to possess several intriguing properties ranging from strain-stabilized superconductivity to a strong catalytic activity. Much interest has arisen surrounding the controlled synthesis of RuO2 films, but unfortunately, utilizing a...

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Main Authors: William Nunn, Sreejith Nair, Hwanhui Yun, Anusha Kamath Manjeshwar, Anil Rajapitamahuni, Dooyong Lee, K. Andre Mkhoyan, Bharat Jalan
Format: Article
Language:English
Published: AIP Publishing LLC 2021-09-01
Series:APL Materials
Online Access:http://dx.doi.org/10.1063/5.0062726
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spelling doaj-31f2c8f1c0d34003b61aeff1fa1012b22021-10-06T14:17:26ZengAIP Publishing LLCAPL Materials2166-532X2021-09-0199091112091112-710.1063/5.0062726Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2William Nunn0Sreejith Nair1Hwanhui Yun2Anusha Kamath Manjeshwar3Anil Rajapitamahuni4Dooyong Lee5K. Andre Mkhoyan6Bharat Jalan7Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USADepartment of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USADepartment of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USADepartment of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USADepartment of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USADepartment of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USADepartment of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USADepartment of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, USAA seemingly simple oxide with a rutile structure, RuO2, has been shown to possess several intriguing properties ranging from strain-stabilized superconductivity to a strong catalytic activity. Much interest has arisen surrounding the controlled synthesis of RuO2 films, but unfortunately, utilizing atomically controlled deposition techniques, such as molecular beam epitaxy (MBE), has been difficult due to the ultra-low vapor pressure and low oxidation potential of Ru. Here, we demonstrate the growth of epitaxial, single crystalline RuO2 films on different substrate orientations using the novel solid-source metal–organic (MO) MBE. This approach circumvents these issues by supplying Ru using a “pre-oxidized” solid MO precursor containing Ru. High-quality epitaxial RuO2 films with a bulk-like room-temperature resistivity of 55 μΩ cm were obtained at a substrate temperature as low as 300 °C. By combining x-ray diffraction, transmission electron microscopy, and electrical measurements, we discuss the effect of substrate temperature, orientation, film thickness, and strain on the structure and electrical properties of these films. Our results illustrating the use of a novel solid-source metal–organic MBE approach pave the way to the atomic-layer controlled synthesis of complex oxides of “stubborn” metals, which are not only difficult to evaporate but also hard to oxidize.http://dx.doi.org/10.1063/5.0062726
collection DOAJ
language English
format Article
sources DOAJ
author William Nunn
Sreejith Nair
Hwanhui Yun
Anusha Kamath Manjeshwar
Anil Rajapitamahuni
Dooyong Lee
K. Andre Mkhoyan
Bharat Jalan
spellingShingle William Nunn
Sreejith Nair
Hwanhui Yun
Anusha Kamath Manjeshwar
Anil Rajapitamahuni
Dooyong Lee
K. Andre Mkhoyan
Bharat Jalan
Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2
APL Materials
author_facet William Nunn
Sreejith Nair
Hwanhui Yun
Anusha Kamath Manjeshwar
Anil Rajapitamahuni
Dooyong Lee
K. Andre Mkhoyan
Bharat Jalan
author_sort William Nunn
title Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2
title_short Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2
title_full Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2
title_fullStr Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2
title_full_unstemmed Solid-source metal–organic molecular beam epitaxy of epitaxial RuO2
title_sort solid-source metal–organic molecular beam epitaxy of epitaxial ruo2
publisher AIP Publishing LLC
series APL Materials
issn 2166-532X
publishDate 2021-09-01
description A seemingly simple oxide with a rutile structure, RuO2, has been shown to possess several intriguing properties ranging from strain-stabilized superconductivity to a strong catalytic activity. Much interest has arisen surrounding the controlled synthesis of RuO2 films, but unfortunately, utilizing atomically controlled deposition techniques, such as molecular beam epitaxy (MBE), has been difficult due to the ultra-low vapor pressure and low oxidation potential of Ru. Here, we demonstrate the growth of epitaxial, single crystalline RuO2 films on different substrate orientations using the novel solid-source metal–organic (MO) MBE. This approach circumvents these issues by supplying Ru using a “pre-oxidized” solid MO precursor containing Ru. High-quality epitaxial RuO2 films with a bulk-like room-temperature resistivity of 55 μΩ cm were obtained at a substrate temperature as low as 300 °C. By combining x-ray diffraction, transmission electron microscopy, and electrical measurements, we discuss the effect of substrate temperature, orientation, film thickness, and strain on the structure and electrical properties of these films. Our results illustrating the use of a novel solid-source metal–organic MBE approach pave the way to the atomic-layer controlled synthesis of complex oxides of “stubborn” metals, which are not only difficult to evaporate but also hard to oxidize.
url http://dx.doi.org/10.1063/5.0062726
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