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染料敏化太阳能电池中纳米多孔电极电子性质的分子调控

Molecular adjustment of the electronic properties of nanoporous electrodes in dye-sensitized solar cells.

作者信息

Rühle Sven, Greenshtein Miri, Chen S-G, Merson Alexandra, Pizem Hillel, Sukenik Chaim S, Cahen David, Zaban Arie

机构信息

Department of Materials and Interfaces, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

J Phys Chem B. 2005 Oct 13;109(40):18907-13. doi: 10.1021/jp0514123.

Abstract

Molecular modification of dye-sensitized, mesoporous TiO2 electrodes changes their electronic properties. We show that the open-circuit voltage (V(oc)) of dye-sensitized solar cells varies linearly with the dipole moment of coadsorbed phosphonic, benzoic, and dicarboxylic acid derivatives. A similar dependence is observed for the short-circuit current density (I(sc)). Photovoltage spectroscopy measurements show a shift of the signal onset as a function of dipole moment. We explain the dipole dependence of the V(oc) in terms of a TiO2 conduction band shift with respect to the redox potential of the electrolyte, which is partially followed by the energy level of the dye. The I(sc) shift is explained by a dipole-dependent driving force for the electron current and a dipole-dependent recombination current.

摘要

染料敏化介孔二氧化钛电极的分子修饰改变了它们的电子性质。我们表明,染料敏化太阳能电池的开路电压(V(oc))与共吸附的膦酸、苯甲酸和二羧酸衍生物的偶极矩呈线性变化。短路电流密度(I(sc))也观察到类似的依赖性。光电压光谱测量显示信号起始点随偶极矩的变化而移动。我们根据二氧化钛导带相对于电解质氧化还原电位的移动来解释V(oc)的偶极依赖性,染料的能级部分随之移动。I(sc)的移动是由电子电流的偶极依赖性驱动力和偶极依赖性复合电流来解释的。

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