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首页> 外文期刊>RSC Advances >Comparative advantages of Zn–Cu–In–S alloy QDs in the construction of quantum dot-sensitized solar cells
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Comparative advantages of Zn–Cu–In–S alloy QDs in the construction of quantum dot-sensitized solar cells

机译:Zn-Cu-In-S合金量子点在量子点敏化太阳能电池构造中的比较优势

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Alloyed structures of quantum dot light-harvesting materials favor the suppression of unwanted charge recombination as well as acceleration of the charge extraction and therefore the improvement of photovoltaic performance of the resulting solar cell devices. Herein, the advantages of Zn–Cu–In–S (ZCIS) alloy QD serving as light-harvesting sensitizer materials in the construction of quantum dot-sensitized solar cells (QDSCs) were compared with core/shell structured CIS/ZnS, as well as pristine CIS QDs. The built QDSCs with alloyed Zn–Cu–In–S QDs as photosensitizer achieved an average power conversion efficiency (PCE) of 8.47% (Voc = 0.613 V, Jsc = 22.62 mA cm?2, FF = 0.610) under AM 1.5G one sun irradiation, which was enhanced by 21%, and 82% in comparison to those of CIS/ZnS, and CIS based solar cells, respectively. In comparison to cell device assembled by the plain CIS and core/shell structured CIS/ZnS, the enhanced photovoltaic performance in ZCIS QDSCs is mainly ascribed to the faster photon generated electron injection rate from QD into TiO2 substrate, and the effective restraint of charge recombination, as confirmed by incident photon-to-current conversion efficiency (IPCE), open-circuit voltage decay (OCVD), as well as electrochemical impedance spectroscopy (EIS) measurements.
机译:量子点聚光材料的合金结构有利于抑制有害的电荷复合以及加速电荷提取,因此有利于改善所得太阳能电池器件的光伏性能。本文中,将Zn-Cu-In-S(ZCIS)合金QD在量子点敏化太阳能电池(QDSC)的构造中用作光敏材料的优点与核/壳结构的CIS / ZnS进行了比较作为原始的CIS QD。以合金化的Zn-Cu-In-S QD作为光敏剂的QDSC的平均功率转换效率(PCE)为8.47%( V oc = 0.613 V, J sc = 22.62 mA cm ?2 ,FF = 1.510 = 0.610)在AM 1.5G下接受一轮太阳照射,与CIS / ZnS和基于CIS的太阳能电池相比,分别提高了21%和82%。与普通CIS和核/壳结构CIS / ZnS组装的电池器件相比,ZCIS QDSC中增强的光伏性能主要归因于QD向TiO 2 衬底,并通过入射光子-电流转换效率(IPCE),开路电压衰减(OCVD)以及电化学阻抗谱(EIS)测量证实了对电荷复合的有效抑制。

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