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Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O

Atmospheric pressure spatial atomic layer deposition (AP-SALD) was used to deposit n-type ZnO and Zn(1-x)Mg(x)O thin films onto p-type thermally oxidized Cu(2)O substrates outside vacuum at low temperature. The performance of photovoltaic devices featuring atmospherically fabricated ZnO/Cu(2)O heter...

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Autores principales: Ievskaya, Yulia, Hoye, Robert L. Z., Sadhanala, Aditya, Musselman, Kevin P., MacManus-Driscoll, Judith L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MyJove Corporation 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5091704/
https://www.ncbi.nlm.nih.gov/pubmed/27500923
http://dx.doi.org/10.3791/53501
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author Ievskaya, Yulia
Hoye, Robert L. Z.
Sadhanala, Aditya
Musselman, Kevin P.
MacManus-Driscoll, Judith L.
author_facet Ievskaya, Yulia
Hoye, Robert L. Z.
Sadhanala, Aditya
Musselman, Kevin P.
MacManus-Driscoll, Judith L.
author_sort Ievskaya, Yulia
collection PubMed
description Atmospheric pressure spatial atomic layer deposition (AP-SALD) was used to deposit n-type ZnO and Zn(1-x)Mg(x)O thin films onto p-type thermally oxidized Cu(2)O substrates outside vacuum at low temperature. The performance of photovoltaic devices featuring atmospherically fabricated ZnO/Cu(2)O heterojunction was dependent on the conditions of AP-SALD film deposition, namely, the substrate temperature and deposition time, as well as on the Cu(2)O substrate exposure to oxidizing agents prior to and during the ZnO deposition. Superficial Cu(2)O to CuO oxidation was identified as a limiting factor to heterojunction quality due to recombination at the ZnO/Cu(2)O interface. Optimization of AP-SALD conditions as well as keeping Cu(2)O away from air and moisture in order to minimize Cu(2)O surface oxidation led to improved device performance. A three-fold increase in the open-circuit voltage (up to 0.65 V) and a two-fold increase in the short-circuit current density produced solar cells with a record 2.2% power conversion efficiency (PCE). This PCE is the highest reported for a Zn(1-x)Mg(x)O/Cu(2)O heterojunction formed outside vacuum, which highlights atmospheric pressure spatial ALD as a promising technique for inexpensive and scalable fabrication of Cu(2)O-based photovoltaics.
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spelling pubmed-50917042016-11-15 Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O Ievskaya, Yulia Hoye, Robert L. Z. Sadhanala, Aditya Musselman, Kevin P. MacManus-Driscoll, Judith L. J Vis Exp Chemistry Atmospheric pressure spatial atomic layer deposition (AP-SALD) was used to deposit n-type ZnO and Zn(1-x)Mg(x)O thin films onto p-type thermally oxidized Cu(2)O substrates outside vacuum at low temperature. The performance of photovoltaic devices featuring atmospherically fabricated ZnO/Cu(2)O heterojunction was dependent on the conditions of AP-SALD film deposition, namely, the substrate temperature and deposition time, as well as on the Cu(2)O substrate exposure to oxidizing agents prior to and during the ZnO deposition. Superficial Cu(2)O to CuO oxidation was identified as a limiting factor to heterojunction quality due to recombination at the ZnO/Cu(2)O interface. Optimization of AP-SALD conditions as well as keeping Cu(2)O away from air and moisture in order to minimize Cu(2)O surface oxidation led to improved device performance. A three-fold increase in the open-circuit voltage (up to 0.65 V) and a two-fold increase in the short-circuit current density produced solar cells with a record 2.2% power conversion efficiency (PCE). This PCE is the highest reported for a Zn(1-x)Mg(x)O/Cu(2)O heterojunction formed outside vacuum, which highlights atmospheric pressure spatial ALD as a promising technique for inexpensive and scalable fabrication of Cu(2)O-based photovoltaics. MyJove Corporation 2016-07-31 /pmc/articles/PMC5091704/ /pubmed/27500923 http://dx.doi.org/10.3791/53501 Text en Copyright © 2016, Journal of Visualized Experiments http://creativecommons.org/licenses/by/3.0/us/ This is an open-access article distributed under the terms of the Creative Commons Attribution 3.0 License. To view a copy of this license, visithttp://creativecommons.org/licenses/by/3.0/us/
spellingShingle Chemistry
Ievskaya, Yulia
Hoye, Robert L. Z.
Sadhanala, Aditya
Musselman, Kevin P.
MacManus-Driscoll, Judith L.
Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O
title Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O
title_full Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O
title_fullStr Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O
title_full_unstemmed Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O
title_short Improved Heterojunction Quality in Cu(2)O-based Solar Cells Through the Optimization of Atmospheric Pressure Spatial Atomic Layer Deposited Zn(1-x)Mg(x)O
title_sort improved heterojunction quality in cu(2)o-based solar cells through the optimization of atmospheric pressure spatial atomic layer deposited zn(1-x)mg(x)o
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5091704/
https://www.ncbi.nlm.nih.gov/pubmed/27500923
http://dx.doi.org/10.3791/53501
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