Cargando…

Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution

In this work, the Cu(2)Mn(x)Zn(1−x)Sn(S,Se)(4) (0 ≤ x ≤ 1) (CMZTSSe) alloy films were fabricated by a sol-gel method. Meanwhile, the effects of Mn substitution on the structural, morphological, electrical, optical, and device performance were studied systematically. The clear phase transformation fr...

Descripción completa

Detalles Bibliográficos
Autores principales: He, Wenjie, Sui, Yingrui, Zeng, Fancong, Wang, Zhanwu, Wang, Fengyou, Yao, Bin, Yang, Lili
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407762/
https://www.ncbi.nlm.nih.gov/pubmed/32605150
http://dx.doi.org/10.3390/nano10071250
_version_ 1783567679017189376
author He, Wenjie
Sui, Yingrui
Zeng, Fancong
Wang, Zhanwu
Wang, Fengyou
Yao, Bin
Yang, Lili
author_facet He, Wenjie
Sui, Yingrui
Zeng, Fancong
Wang, Zhanwu
Wang, Fengyou
Yao, Bin
Yang, Lili
author_sort He, Wenjie
collection PubMed
description In this work, the Cu(2)Mn(x)Zn(1−x)Sn(S,Se)(4) (0 ≤ x ≤ 1) (CMZTSSe) alloy films were fabricated by a sol-gel method. Meanwhile, the effects of Mn substitution on the structural, morphological, electrical, optical, and device performance were studied systematically. The clear phase transformation from Cu(2)ZnSn(S,Se)(4) (CZTSSe) with kesterite structure to Cu(2)MnSn(S,Se)(4) (CMTSSe) with stannite structure was observed as x = 0.4. The scanning electron microscope (SEM) results show that the Mn can facilitate the grain growth of CMZTSSe alloy films. Since the x was 0.1, the uniform, compact, and smooth film was obtained. The results show that the band gap of the CMZTSSe film with a kesterite structure was incessantly increased in a scope of 1.024–1.054 eV with the increase of x from 0 to 0.3, and the band gap of the CMZTSSe film with stannite structure was incessantly decreased in a scope of 1.047–1.013 eV with the increase of x from 0.4 to 1. Meanwhile, compared to the power conversion efficiency (PCE) of pure CZTSSe device, the PCE of CMZTSSe (x = 0.1) device is improved from 3.61% to 4.90%, and about a maximum enhanced the open-circuit voltage (V(OC)) of 30 mV is achieved. The improvement is concerned with the enhancement of the grain size and decrease of the Cu instead of Zn (Cu(Zn)) anti-site defects. Therefore, it is believed that the adjunction of a small amount of Mn may be an appropriate approach to improve the PCE of CZTSSe solar cells.
format Online
Article
Text
id pubmed-7407762
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-74077622020-08-12 Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution He, Wenjie Sui, Yingrui Zeng, Fancong Wang, Zhanwu Wang, Fengyou Yao, Bin Yang, Lili Nanomaterials (Basel) Article In this work, the Cu(2)Mn(x)Zn(1−x)Sn(S,Se)(4) (0 ≤ x ≤ 1) (CMZTSSe) alloy films were fabricated by a sol-gel method. Meanwhile, the effects of Mn substitution on the structural, morphological, electrical, optical, and device performance were studied systematically. The clear phase transformation from Cu(2)ZnSn(S,Se)(4) (CZTSSe) with kesterite structure to Cu(2)MnSn(S,Se)(4) (CMTSSe) with stannite structure was observed as x = 0.4. The scanning electron microscope (SEM) results show that the Mn can facilitate the grain growth of CMZTSSe alloy films. Since the x was 0.1, the uniform, compact, and smooth film was obtained. The results show that the band gap of the CMZTSSe film with a kesterite structure was incessantly increased in a scope of 1.024–1.054 eV with the increase of x from 0 to 0.3, and the band gap of the CMZTSSe film with stannite structure was incessantly decreased in a scope of 1.047–1.013 eV with the increase of x from 0.4 to 1. Meanwhile, compared to the power conversion efficiency (PCE) of pure CZTSSe device, the PCE of CMZTSSe (x = 0.1) device is improved from 3.61% to 4.90%, and about a maximum enhanced the open-circuit voltage (V(OC)) of 30 mV is achieved. The improvement is concerned with the enhancement of the grain size and decrease of the Cu instead of Zn (Cu(Zn)) anti-site defects. Therefore, it is believed that the adjunction of a small amount of Mn may be an appropriate approach to improve the PCE of CZTSSe solar cells. MDPI 2020-06-28 /pmc/articles/PMC7407762/ /pubmed/32605150 http://dx.doi.org/10.3390/nano10071250 Text en © 2020 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
He, Wenjie
Sui, Yingrui
Zeng, Fancong
Wang, Zhanwu
Wang, Fengyou
Yao, Bin
Yang, Lili
Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution
title Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution
title_full Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution
title_fullStr Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution
title_full_unstemmed Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution
title_short Enhancing the Performance of Aqueous Solution-Processed Cu(2)ZnSn(S,Se)(4) Photovoltaic Materials by Mn(2+) Substitution
title_sort enhancing the performance of aqueous solution-processed cu(2)znsn(s,se)(4) photovoltaic materials by mn(2+) substitution
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407762/
https://www.ncbi.nlm.nih.gov/pubmed/32605150
http://dx.doi.org/10.3390/nano10071250
work_keys_str_mv AT hewenjie enhancingtheperformanceofaqueoussolutionprocessedcu2znsnsse4photovoltaicmaterialsbymn2substitution
AT suiyingrui enhancingtheperformanceofaqueoussolutionprocessedcu2znsnsse4photovoltaicmaterialsbymn2substitution
AT zengfancong enhancingtheperformanceofaqueoussolutionprocessedcu2znsnsse4photovoltaicmaterialsbymn2substitution
AT wangzhanwu enhancingtheperformanceofaqueoussolutionprocessedcu2znsnsse4photovoltaicmaterialsbymn2substitution
AT wangfengyou enhancingtheperformanceofaqueoussolutionprocessedcu2znsnsse4photovoltaicmaterialsbymn2substitution
AT yaobin enhancingtheperformanceofaqueoussolutionprocessedcu2znsnsse4photovoltaicmaterialsbymn2substitution
AT yanglili enhancingtheperformanceofaqueoussolutionprocessedcu2znsnsse4photovoltaicmaterialsbymn2substitution