Cargando…

Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature

Molybdenum (Mo), which is one among the refractory metals, is a promising material with a wide variety of technological applications in microelectronics, optoelectronics, and energy conversion and storage. However, understanding the structure–property correlation and optimization at the nanoscale di...

Descripción completa

Detalles Bibliográficos
Autores principales: Makeswaran, Nanthakishore, Orozco, Cristian, Battu, Anil K., Deemer, Eva, Ramana, C. V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8837047/
https://www.ncbi.nlm.nih.gov/pubmed/35160699
http://dx.doi.org/10.3390/ma15030754
_version_ 1784649828412686336
author Makeswaran, Nanthakishore
Orozco, Cristian
Battu, Anil K.
Deemer, Eva
Ramana, C. V.
author_facet Makeswaran, Nanthakishore
Orozco, Cristian
Battu, Anil K.
Deemer, Eva
Ramana, C. V.
author_sort Makeswaran, Nanthakishore
collection PubMed
description Molybdenum (Mo), which is one among the refractory metals, is a promising material with a wide variety of technological applications in microelectronics, optoelectronics, and energy conversion and storage. However, understanding the structure–property correlation and optimization at the nanoscale dimension is quite important to meet the requirements of the emerging nanoelectronics and nanophotonics. In this context, we focused our efforts to derive a comprehensive understanding of the nanoscale structure, phase, and electronic properties of nanocrystalline Mo films with variable microstructure and grain size. Molybdenum films were deposited under varying temperature (25–500 °C), which resulted in Mo films with variable grain size of 9–22 nm. The grazing incidence X-ray diffraction analyses indicate the (110) preferred growth behavior the Mo films, though there is a marked decrease in hardness and elastic modulus values. In particular, there is a sizable difference in maximum and minimum elastic modulus values; the elastic modulus decreased from ~460 to 260–280 GPa with increasing substrate temperature from 25–500 °C. The plasticity index and wear resistance index values show a dramatic change with substrate temperature and grain size. Additionally, the optical properties of the nanocrystalline Mo films evaluated by spectroscopic ellipsometry indicate a marked dependence on the growth temperature and grain size. This dependence on grain size variation was particularly notable for the refractive index where Mo films with lower grain size fell in a range between ~2.75–3.75 across the measured wavelength as opposed to the range of 1.5–2.5 for samples deposited at temperatures of 400–500 °C, where the grain size is relatively higher. The conductive atomic force microscopy (AFM) studies indicate a direct correlation with grain size variation and grain versus grain boundary conduction; the trend noted was improved electrical conductivity of the Mo films in correlation with increasing grain size. The combined ellipsometry and conductive AFM studies allowed us to optimize the structure–property correlation in nanocrystalline Mo films for application in electronics and optoelectronics.
format Online
Article
Text
id pubmed-8837047
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-88370472022-02-12 Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature Makeswaran, Nanthakishore Orozco, Cristian Battu, Anil K. Deemer, Eva Ramana, C. V. Materials (Basel) Article Molybdenum (Mo), which is one among the refractory metals, is a promising material with a wide variety of technological applications in microelectronics, optoelectronics, and energy conversion and storage. However, understanding the structure–property correlation and optimization at the nanoscale dimension is quite important to meet the requirements of the emerging nanoelectronics and nanophotonics. In this context, we focused our efforts to derive a comprehensive understanding of the nanoscale structure, phase, and electronic properties of nanocrystalline Mo films with variable microstructure and grain size. Molybdenum films were deposited under varying temperature (25–500 °C), which resulted in Mo films with variable grain size of 9–22 nm. The grazing incidence X-ray diffraction analyses indicate the (110) preferred growth behavior the Mo films, though there is a marked decrease in hardness and elastic modulus values. In particular, there is a sizable difference in maximum and minimum elastic modulus values; the elastic modulus decreased from ~460 to 260–280 GPa with increasing substrate temperature from 25–500 °C. The plasticity index and wear resistance index values show a dramatic change with substrate temperature and grain size. Additionally, the optical properties of the nanocrystalline Mo films evaluated by spectroscopic ellipsometry indicate a marked dependence on the growth temperature and grain size. This dependence on grain size variation was particularly notable for the refractive index where Mo films with lower grain size fell in a range between ~2.75–3.75 across the measured wavelength as opposed to the range of 1.5–2.5 for samples deposited at temperatures of 400–500 °C, where the grain size is relatively higher. The conductive atomic force microscopy (AFM) studies indicate a direct correlation with grain size variation and grain versus grain boundary conduction; the trend noted was improved electrical conductivity of the Mo films in correlation with increasing grain size. The combined ellipsometry and conductive AFM studies allowed us to optimize the structure–property correlation in nanocrystalline Mo films for application in electronics and optoelectronics. MDPI 2022-01-19 /pmc/articles/PMC8837047/ /pubmed/35160699 http://dx.doi.org/10.3390/ma15030754 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Makeswaran, Nanthakishore
Orozco, Cristian
Battu, Anil K.
Deemer, Eva
Ramana, C. V.
Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature
title Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature
title_full Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature
title_fullStr Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature
title_full_unstemmed Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature
title_short Structural, Optical and Mechanical Properties of Nanocrystalline Molybdenum Thin Films Deposited under Variable Substrate Temperature
title_sort structural, optical and mechanical properties of nanocrystalline molybdenum thin films deposited under variable substrate temperature
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8837047/
https://www.ncbi.nlm.nih.gov/pubmed/35160699
http://dx.doi.org/10.3390/ma15030754
work_keys_str_mv AT makeswarannanthakishore structuralopticalandmechanicalpropertiesofnanocrystallinemolybdenumthinfilmsdepositedundervariablesubstratetemperature
AT orozcocristian structuralopticalandmechanicalpropertiesofnanocrystallinemolybdenumthinfilmsdepositedundervariablesubstratetemperature
AT battuanilk structuralopticalandmechanicalpropertiesofnanocrystallinemolybdenumthinfilmsdepositedundervariablesubstratetemperature
AT deemereva structuralopticalandmechanicalpropertiesofnanocrystallinemolybdenumthinfilmsdepositedundervariablesubstratetemperature
AT ramanacv structuralopticalandmechanicalpropertiesofnanocrystallinemolybdenumthinfilmsdepositedundervariablesubstratetemperature