Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin Films

In this work, the diffusion process of sodium (Na) in molybdenum (Mo) thin films while it was deposited on soda lime glass (SLG) was studied. A small amount of oxygen was present in the chamber while the direct-current (DC) magnetron sputtering was used for the deposition. The substrate temperatures...

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Main Authors: Orlando Ayala, Benjamin Belfore, Tasnuva Ashrafee, John Akwari, Grace Rajan, Shankar Karki, Deewakar Poudel, Sylvain Marsillac
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/9/2479
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spelling doaj-6ec7cd5f88b44530bd2e956817b98b452021-04-26T23:04:09ZengMDPI AGEnergies1996-10732021-04-01142479247910.3390/en14092479Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin FilmsOrlando Ayala0Benjamin Belfore1Tasnuva Ashrafee2John Akwari3Grace Rajan4Shankar Karki5Deewakar Poudel6Sylvain Marsillac7Department of Engineering Technology, Old Dominion University, Norfolk, VA 23529, USAVirginia Institute of Photovoltaics, Old Dominion University, Norfolk, VA 23529, USAVirginia Institute of Photovoltaics, Old Dominion University, Norfolk, VA 23529, USAVirginia Institute of Photovoltaics, Old Dominion University, Norfolk, VA 23529, USAVirginia Institute of Photovoltaics, Old Dominion University, Norfolk, VA 23529, USAVirginia Institute of Photovoltaics, Old Dominion University, Norfolk, VA 23529, USAVirginia Institute of Photovoltaics, Old Dominion University, Norfolk, VA 23529, USAVirginia Institute of Photovoltaics, Old Dominion University, Norfolk, VA 23529, USAIn this work, the diffusion process of sodium (Na) in molybdenum (Mo) thin films while it was deposited on soda lime glass (SLG) was studied. A small amount of oxygen was present in the chamber while the direct-current (DC) magnetron sputtering was used for the deposition. The substrate temperatures were varied to observe its effect. Such molybdenum films, with or without oxidations, are often used in thin film solar cells, either as back contact or as hole transport layers. Secondary ion mass spectrometry (SIMS) was used to quantify the concentration of the species. A grain diffusion mechanistic model incorporating the effect of grain and grain boundary geometrical shape and size was developed. The model was used to provide an in-depth theoretical analysis of the sodium diffusion in molybdenum thin films that lead to the measured SIMS data. It was observed that not only diffusion coefficients should be considered when analyzing diffusion processes in thin films but also the ratio of grain boundary size to grain size. Both depend on substrate temperature and directly affect the amount of diffused species in the film. The data were analyzed under the light of the film growth speed versus diffusion front speed, the effect of oxygen content, and the effect of substrate temperature on the overall diffusion process. The temperature inversely affects the ratio of grain boundary size and grain size and directly affects the diffusion coefficient, which leads to a preferable temperature at which the highest amount of alkali can be found in the film.https://www.mdpi.com/1996-1073/14/9/2479modelingthin filmsdiffusionmolybdenum
collection DOAJ
language English
format Article
sources DOAJ
author Orlando Ayala
Benjamin Belfore
Tasnuva Ashrafee
John Akwari
Grace Rajan
Shankar Karki
Deewakar Poudel
Sylvain Marsillac
spellingShingle Orlando Ayala
Benjamin Belfore
Tasnuva Ashrafee
John Akwari
Grace Rajan
Shankar Karki
Deewakar Poudel
Sylvain Marsillac
Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin Films
Energies
modeling
thin films
diffusion
molybdenum
author_facet Orlando Ayala
Benjamin Belfore
Tasnuva Ashrafee
John Akwari
Grace Rajan
Shankar Karki
Deewakar Poudel
Sylvain Marsillac
author_sort Orlando Ayala
title Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin Films
title_short Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin Films
title_full Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin Films
title_fullStr Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin Films
title_full_unstemmed Theoretical Analysis of Experimental Data of Sodium Diffusion in Oxidized Molybdenum Thin Films
title_sort theoretical analysis of experimental data of sodium diffusion in oxidized molybdenum thin films
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2021-04-01
description In this work, the diffusion process of sodium (Na) in molybdenum (Mo) thin films while it was deposited on soda lime glass (SLG) was studied. A small amount of oxygen was present in the chamber while the direct-current (DC) magnetron sputtering was used for the deposition. The substrate temperatures were varied to observe its effect. Such molybdenum films, with or without oxidations, are often used in thin film solar cells, either as back contact or as hole transport layers. Secondary ion mass spectrometry (SIMS) was used to quantify the concentration of the species. A grain diffusion mechanistic model incorporating the effect of grain and grain boundary geometrical shape and size was developed. The model was used to provide an in-depth theoretical analysis of the sodium diffusion in molybdenum thin films that lead to the measured SIMS data. It was observed that not only diffusion coefficients should be considered when analyzing diffusion processes in thin films but also the ratio of grain boundary size to grain size. Both depend on substrate temperature and directly affect the amount of diffused species in the film. The data were analyzed under the light of the film growth speed versus diffusion front speed, the effect of oxygen content, and the effect of substrate temperature on the overall diffusion process. The temperature inversely affects the ratio of grain boundary size and grain size and directly affects the diffusion coefficient, which leads to a preferable temperature at which the highest amount of alkali can be found in the film.
topic modeling
thin films
diffusion
molybdenum
url https://www.mdpi.com/1996-1073/14/9/2479
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