详细信息
Insight into the reduction and property of graphene hydrogel for high efficiency composite counter electrodes and solar cells ( EI收录)
文献类型:期刊文献
英文题名:Insight into the reduction and property of graphene hydrogel for high efficiency composite counter electrodes and solar cells
作者:Ji, Xiaohe[1]; Yang, Cheng[1]; Fang, Wenjuan[1]; Zhang, Hua[1]
机构:[1] Shanghai Key Laboratory of Functional Materials Chemistry, School of Chemistry and Molecular Engineering, East China University of Science and Technology, Shanghai, 200237, China
年份:2019
卷号:297
起止页码:980
外文期刊名:Electrochimica Acta
收录:EI(收录号:20190106333149)
语种:英文
外文关键词:Selenium compounds - Electrodes - Graphene - Brass - Cadmium compounds - Current density - Catalyst activity - Efficiency - II-VI semiconductors - Solar cells - Sulfur compounds - Hydrogels - Semiconductor quantum dots - Nanocrystals
摘要:Although graphene hydrogel (GH) as counter electrode (CE) has been reported to improve the efficiency of quantum dot sensitized solar cells (QDSCs), the lower current density than that of commonly used brass-based CE is still a limitation. In this work, the investigated CEs containing GH and Cu2S have further improved current density with the resultant high efficiency via controlling the reduction level and property of GH. Results show that the composite CEs in which GH was fabricated via chemical reduction technique exhibit higher current density accompanied by higher voltage and fill factor, leading to the dramatically high efficiency. In comparison with that of hydrothermal reduction, the outperformance of chemically-reduced GH is attributed to the more reduction level, resulting in higher conductivity and better catalytic activity with synergistic effect of Cu2S catalysts. The impressively high efficiency of 11.51% has been obtained for the model CdSeTe QDSC, respectively 23.9% and 7.2% higher than that of brass and thermally-reduced GH based CEs. The exciting results meet our expectations of further improving efficiency through higher current density. The as-prepared GH based composite CE has also been exploited to assemble fully flexible QDSC with high efficiency of 2.84%. ? 2018 Elsevier Ltd
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