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Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells

Cu(2)Mg(x)Zn(1−x)SnS(4) (0 ≤ x ≤0.6) thin films were prepared by a simple, low-temperature (300 °C) and low-cost sol–gel spin coating method followed by post-annealing at optimum conditions. We optimized the annealing conditions and investigated the effect of Mg content on the crystalline quality, e...

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Autores principales: Sui, Yingrui, Zhang, Yu, Jiang, Dongyue, He, Wenjie, Wang, Zhanwu, Wang, Fengyou, Yao, Bin, Yang, Lili
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6669681/
https://www.ncbi.nlm.nih.gov/pubmed/31262019
http://dx.doi.org/10.3390/nano9070955
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author Sui, Yingrui
Zhang, Yu
Jiang, Dongyue
He, Wenjie
Wang, Zhanwu
Wang, Fengyou
Yao, Bin
Yang, Lili
author_facet Sui, Yingrui
Zhang, Yu
Jiang, Dongyue
He, Wenjie
Wang, Zhanwu
Wang, Fengyou
Yao, Bin
Yang, Lili
author_sort Sui, Yingrui
collection PubMed
description Cu(2)Mg(x)Zn(1−x)SnS(4) (0 ≤ x ≤0.6) thin films were prepared by a simple, low-temperature (300 °C) and low-cost sol–gel spin coating method followed by post-annealing at optimum conditions. We optimized the annealing conditions and investigated the effect of Mg content on the crystalline quality, electrical and optical performances of the Cu(2)Mg(x)Zn(1−x)SnS(4) thin films. It was found that the Cu(2)Mg(x)Zn(1−x)SnS(4) film annealed at 580 °C for 60 min contained large grain, less grain boundaries and high carrier concentration. Pure phase kesterite Cu(2)Mg(x)Zn(1−x)SnS(4) (0 ≤ x ≤ 0.6) thin films were obtained by using optimal annealing conditions; notably, the smaller Zn(2+) ions in the Cu(2)ZnSnS(4) lattice were replaced by larger Mg(2+) ions. With an increase in x from 0 to 0.6, the band gap energy of the films decreased from 1.43 to 1.29 eV. When the ratio of Mg/Mg + Zn is 0.2 (x = 0.2), the grain size of Cu(2)Mg(x)Zn(1−x)SnS(4) reaches a maximum value of 1.5 μm and the surface morphology is smooth and dense. Simultaneously, the electrical performance of Cu(2)Mg(x)Zn(1−x)SnS(4) thin film is optimized at x = 0.2, the carrier concentration reaches a maximum value of 3.29 × 10(18) cm(−3).
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spelling pubmed-66696812019-08-08 Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells Sui, Yingrui Zhang, Yu Jiang, Dongyue He, Wenjie Wang, Zhanwu Wang, Fengyou Yao, Bin Yang, Lili Nanomaterials (Basel) Article Cu(2)Mg(x)Zn(1−x)SnS(4) (0 ≤ x ≤0.6) thin films were prepared by a simple, low-temperature (300 °C) and low-cost sol–gel spin coating method followed by post-annealing at optimum conditions. We optimized the annealing conditions and investigated the effect of Mg content on the crystalline quality, electrical and optical performances of the Cu(2)Mg(x)Zn(1−x)SnS(4) thin films. It was found that the Cu(2)Mg(x)Zn(1−x)SnS(4) film annealed at 580 °C for 60 min contained large grain, less grain boundaries and high carrier concentration. Pure phase kesterite Cu(2)Mg(x)Zn(1−x)SnS(4) (0 ≤ x ≤ 0.6) thin films were obtained by using optimal annealing conditions; notably, the smaller Zn(2+) ions in the Cu(2)ZnSnS(4) lattice were replaced by larger Mg(2+) ions. With an increase in x from 0 to 0.6, the band gap energy of the films decreased from 1.43 to 1.29 eV. When the ratio of Mg/Mg + Zn is 0.2 (x = 0.2), the grain size of Cu(2)Mg(x)Zn(1−x)SnS(4) reaches a maximum value of 1.5 μm and the surface morphology is smooth and dense. Simultaneously, the electrical performance of Cu(2)Mg(x)Zn(1−x)SnS(4) thin film is optimized at x = 0.2, the carrier concentration reaches a maximum value of 3.29 × 10(18) cm(−3). MDPI 2019-06-30 /pmc/articles/PMC6669681/ /pubmed/31262019 http://dx.doi.org/10.3390/nano9070955 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sui, Yingrui
Zhang, Yu
Jiang, Dongyue
He, Wenjie
Wang, Zhanwu
Wang, Fengyou
Yao, Bin
Yang, Lili
Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells
title Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells
title_full Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells
title_fullStr Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells
title_full_unstemmed Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells
title_short Investigation of Optimum Mg Doping Content and Annealing Parameters of Cu(2)Mg(x)Zn(1−x)SnS(4) Thin Films for Solar Cells
title_sort investigation of optimum mg doping content and annealing parameters of cu(2)mg(x)zn(1−x)sns(4) thin films for solar cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6669681/
https://www.ncbi.nlm.nih.gov/pubmed/31262019
http://dx.doi.org/10.3390/nano9070955
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