首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Solution-processed inverted solar cells using an inorganic bulk heterojunction of iron pyrite nanocrystals and cadmium selenide quantum dots with a polymeric hole-transport medium
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Solution-processed inverted solar cells using an inorganic bulk heterojunction of iron pyrite nanocrystals and cadmium selenide quantum dots with a polymeric hole-transport medium

机译:使用黄铁矿纳米晶体和硒化镉量子点的无机本体异质结与聚合物空穴传输介质进行固溶处理的倒置太阳能电池

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摘要

Inverted solar cells were developed using a donor-acceptor (D-A) bulk heterojunction (BHJ) of iron pyrite nanocrystals (FeS2 NCs) and cadmium selenide quantum dots (CdSe QDs) The all-inorganic BHJ nanocomposites showed broad-range absorption and effective dynamics of charge dissociation and transfer through bi-continuous D-A interactions under a type II band-offset system The developed solar cell, which contained an optimized ratio of FeS2-CdSe in the blend and a polymeric hole-transport layer between the photoactive layer and the anode electrode, showed a significantly enhanced photovoltaic efficiency. The long-term ambient stability of the inverted devices was better than that of conventional devices fabricated in this study, but was relatively lower than the air stability of other NC solar cells. Our findings suggest the potential of FeS2 NCs as an environmentally benign, earth-abundant material for solution-processed photovoltaic applications The merits of an FeS2-CdSe D-A BHJ system with an inverted device architecture and its long-term stability are addressed
机译:使用黄铁矿纳米晶体(FeS2 NCs)和硒化镉量子点(CdSe QDs)的施主-受体(DA)本体异质结(BHJ)开发了倒置太阳能电池。在II型带偏移系统下通过双连续DA相互作用进行电荷解离和转移研制的太阳能电池,其中包含优化比例的FeS2-CdSe共混物以及光敏层和阳极之间的聚合物空穴传输层,显示出显着提高的光伏效率。倒置器件的长期环境稳定性优于本研究中制造的常规器件,但相对低于其他NC太阳能电池的空气稳定性。我们的发现表明,FeS2 NCs在溶液处理的光伏应用中具有环境友好性,富含地球的材料的潜力。解决了具有倒置器件架构的FeS2-CdSe D-A BHJ系统的优点及其长期稳定性

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