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Electrodeposition of Cu2S nanoparticles on fluorine-doped tin oxide for efficient counter electrode of quantum-dot-sensitized solar cells

机译:Cu2S纳米粒子对氟掺杂氧化锌的电沉积,用于量子点敏化太阳能电池的有效逆电极

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摘要

This study demonstrated a single-step potentiostatic method for the electrodeposition of copper (I) sulfide (Cu2S) nanoparticles onto fluorine-doped tin oxide (FTO) electrode from an aqueous solution of CuCl2 and thiourea (TU) to develop counter electrodes (CEs) for quantum-dot sensitized solar cells (QPSSCs). The homogeneously distributed and optimized Cu2S-CE exhibited an improved catalytic activity in the reduction of polysulfide (S2-/S-n(2-)) electrolyte, which resulted in a power conversion efficiency (PCE) of 4.24% with a short-circuit current density (J(sc)), open-circuit voltage (V-oc), and fill factor (if) of 19.60 mA/cm(2), 0.445 V, and 48.62%, respectively, for PbS/CdS/ZnS QDs sensitized QPSSCs, while the Pt counterpart exhibited a PCE of 1.17%. The superior photovoltaic performance of this Cu2S-CEs based QDSSC compared to the Pt counterpart is due to its greater electrocatalytic activity and lower charge transfer resistance (R-CT) at the Cu2S-CEs/(S2-/S-n(2-)) interface. This strategy provides an effective, low-cost, and non-Pt electrode for QDSSCs, which is promising for other electrochemical applications. (C) 2018 The Korean Society of Industrial and Engineering Chemistry. Published by Elsevier B.V. All rights reserved.
机译:该研究表明,从Cucl2和硫脲(Tu)的水溶液中,将铜(I)硫化物(Cu2s)纳米颗粒电沉积到氟掺杂锡氧化物(FTO)电极上的单步电位方法,以开发计数器电极(CES)对于量子点敏化太阳能电池(QPSSCs)。均匀分布和优化的Cu2S-Ce在减少多硫化物(S2- / Sn(2-))电解质中,在降低的电解质中表现出改进的催化活性,这导致功率转换效率(PCE)为4.24%,短路电流密度(j(sc)),开路电压(V-oc),分别为19.60 mA / cm(2),0.445 V和48.62%的填充因子(IF),用于PBS / CDS / ZnS QDS致敏QPSSCS ,虽然PT对应物呈现为1.17%的PCE。与PT对应物相比,基于CU 2-CES的QDSSC的卓越光伏性能是由于其在CU 2 S-CES /(S2- / SN(2-))界面上的更大的电催化活性和较低的电荷转移电阻(R-CT) 。该策略为QDSSC提供了一种有效,低成本和非PT电极,这对于其他电化学应用是有前途的。 (c)2018年韩国工程和工程化学学会。 elsevier b.v出版。保留所有权利。

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