Cargando…

A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells

As the essential component of a quantum dot-sensitized solar cell (QDSC), the counter electrode (CE) plays an important role in electron transfer and catalytic reduction acquisition throughout the device. A novel route to design multilayer functionalized Cu(2)S thin films as CEs with high catalytic...

Descripción completa

Detalles Bibliográficos
Autores principales: Wu, Libin, Lin, Zhengmeng, Feng, Pengyu, Luo, Liping, Zhai, Lanlan, Kong, Fantai, Yang, Yun, Zhang, Lijie, Huang, Shaoming, Zou, Chao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418642/
https://www.ncbi.nlm.nih.gov/pubmed/36133221
http://dx.doi.org/10.1039/c9na00654k
_version_ 1784776993503444992
author Wu, Libin
Lin, Zhengmeng
Feng, Pengyu
Luo, Liping
Zhai, Lanlan
Kong, Fantai
Yang, Yun
Zhang, Lijie
Huang, Shaoming
Zou, Chao
author_facet Wu, Libin
Lin, Zhengmeng
Feng, Pengyu
Luo, Liping
Zhai, Lanlan
Kong, Fantai
Yang, Yun
Zhang, Lijie
Huang, Shaoming
Zou, Chao
author_sort Wu, Libin
collection PubMed
description As the essential component of a quantum dot-sensitized solar cell (QDSC), the counter electrode (CE) plays an important role in electron transfer and catalytic reduction acquisition throughout the device. A novel route to design multilayer functionalized Cu(2)S thin films as CEs with high catalytic activity and enhanced stability, as well as large specific surface area and high conductivity, is presented. Firstly, Mo-based films were prepared by magnetron sputtering on a glass substrate, and then porous CuZnMo conductive films were formed by etching with hydrochloric acid. Secondly, indium tin oxide (ITO) film was sputtered onto the porous structure to act as a protective layer, and a porous ITO/CuZnMo structured film was obtained after optimization. In the third step, multilayer Cu(x)/ITO/CuZnMo structured films were acquired by sputtering Cu films. Finally, multilayer Cu(2)S(t)/ITO/CuZnMo functionalized film CEs were obtained via in situ sulfidation of sputtered Cu films. The functions of conduction and resistance to electrolyte corrosion were produced and enhanced by annealing an ITO layer at high temperature prior to Cu deposition, while catalytic activity enabled by Cu(2)S was realized from Cu film sulfidation. The multilayer Cu(2)S/ITO(500 °C)/CuZnMo functionalized films exhibit high catalytic activity and enhanced stability for resistance to electrolyte corrosion. Taking multilayer Cu(2)S/ITO(500 °C)/CuZnMo films as CEs, the QDSCs demonstrated good stability of power conversion efficiency (PCE) after 500 h of irradiation, from an initial 4.21% to a final 4.00%. Furthermore, the thickness of Cu(2)S film modulated by the duration of Cu sputtering was investigated. It was found that the QDSCs using multilayer Cu(2)S(40 min)/ITO/CuZnMo functionalized film with a Cu(2)S thickness of 1.2 μm as CE exhibit the best performance, and the R(ct) value was 0.57 Ω. The best photovoltaic performance with a PCE of 5.21% (V(oc) = 533.1 mV, J(sc) = 18.80 mA cm(−2), FF = 52.84%) was achieved under AM 1.5 radiation with an incident power of 100 mW cm(−2). This design of a multilayer functionalized CE introduces potential alternatives to the common brass-based CE for long-term QDSCs with high performance.
format Online
Article
Text
id pubmed-9418642
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher RSC
record_format MEDLINE/PubMed
spelling pubmed-94186422022-09-20 A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells Wu, Libin Lin, Zhengmeng Feng, Pengyu Luo, Liping Zhai, Lanlan Kong, Fantai Yang, Yun Zhang, Lijie Huang, Shaoming Zou, Chao Nanoscale Adv Chemistry As the essential component of a quantum dot-sensitized solar cell (QDSC), the counter electrode (CE) plays an important role in electron transfer and catalytic reduction acquisition throughout the device. A novel route to design multilayer functionalized Cu(2)S thin films as CEs with high catalytic activity and enhanced stability, as well as large specific surface area and high conductivity, is presented. Firstly, Mo-based films were prepared by magnetron sputtering on a glass substrate, and then porous CuZnMo conductive films were formed by etching with hydrochloric acid. Secondly, indium tin oxide (ITO) film was sputtered onto the porous structure to act as a protective layer, and a porous ITO/CuZnMo structured film was obtained after optimization. In the third step, multilayer Cu(x)/ITO/CuZnMo structured films were acquired by sputtering Cu films. Finally, multilayer Cu(2)S(t)/ITO/CuZnMo functionalized film CEs were obtained via in situ sulfidation of sputtered Cu films. The functions of conduction and resistance to electrolyte corrosion were produced and enhanced by annealing an ITO layer at high temperature prior to Cu deposition, while catalytic activity enabled by Cu(2)S was realized from Cu film sulfidation. The multilayer Cu(2)S/ITO(500 °C)/CuZnMo functionalized films exhibit high catalytic activity and enhanced stability for resistance to electrolyte corrosion. Taking multilayer Cu(2)S/ITO(500 °C)/CuZnMo films as CEs, the QDSCs demonstrated good stability of power conversion efficiency (PCE) after 500 h of irradiation, from an initial 4.21% to a final 4.00%. Furthermore, the thickness of Cu(2)S film modulated by the duration of Cu sputtering was investigated. It was found that the QDSCs using multilayer Cu(2)S(40 min)/ITO/CuZnMo functionalized film with a Cu(2)S thickness of 1.2 μm as CE exhibit the best performance, and the R(ct) value was 0.57 Ω. The best photovoltaic performance with a PCE of 5.21% (V(oc) = 533.1 mV, J(sc) = 18.80 mA cm(−2), FF = 52.84%) was achieved under AM 1.5 radiation with an incident power of 100 mW cm(−2). This design of a multilayer functionalized CE introduces potential alternatives to the common brass-based CE for long-term QDSCs with high performance. RSC 2020-01-06 /pmc/articles/PMC9418642/ /pubmed/36133221 http://dx.doi.org/10.1039/c9na00654k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wu, Libin
Lin, Zhengmeng
Feng, Pengyu
Luo, Liping
Zhai, Lanlan
Kong, Fantai
Yang, Yun
Zhang, Lijie
Huang, Shaoming
Zou, Chao
A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells
title A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells
title_full A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells
title_fullStr A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells
title_full_unstemmed A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells
title_short A novel strategy to design a multilayer functionalized Cu(2)S thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells
title_sort novel strategy to design a multilayer functionalized cu(2)s thin film counter electrode with enhanced catalytic activity and stability for quantum dot sensitized solar cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418642/
https://www.ncbi.nlm.nih.gov/pubmed/36133221
http://dx.doi.org/10.1039/c9na00654k
work_keys_str_mv AT wulibin anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT linzhengmeng anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT fengpengyu anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT luoliping anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT zhailanlan anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT kongfantai anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT yangyun anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT zhanglijie anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT huangshaoming anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT zouchao anovelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT wulibin novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT linzhengmeng novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT fengpengyu novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT luoliping novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT zhailanlan novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT kongfantai novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT yangyun novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT zhanglijie novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT huangshaoming novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells
AT zouchao novelstrategytodesignamultilayerfunctionalizedcu2sthinfilmcounterelectrodewithenhancedcatalyticactivityandstabilityforquantumdotsensitizedsolarcells