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一种高共轭苯并咪唑卡宾基钌敏化剂,用于染料敏化太阳能电池。

A highly conjugated benzimidazole carbene-based ruthenium sensitizer for dye-sensitized solar cells.

机构信息

Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei, Taiwan 10608, ROC.

出版信息

Chem Asian J. 2013 Sep;8(9):2196-203. doi: 10.1002/asia.201300447. Epub 2013 Jul 5.

DOI:10.1002/asia.201300447
PMID:23832840
Abstract

A new type of carbene-based ruthenium sensitizer, CB104, with a highly conjugated ancillary ligand, diphenylvinylthiophene-substituted benzimidazolepyridine, was designed and developed for dye-sensitized solar cell applications. The influence of the thiophene antenna on the performance of the cell anchored with CB104 was investigated. Compared with the dye CBTR, the conjugated thiophene in the ancillary ligand of CB104 enhanced the molar extinction coefficient of the intraligand π-π* transition and the intensity of the lower energy metal-to-ligand charge-transfer band. However, the incident photon-to-current conversion efficiency spectrum of the cell anchored with CB104 (0.15 mM) showed a maximum of 63 % at 420 nm. The cell sensitized with the dye CB104 attained a power conversion efficiency of 7.30 %, which was lower than that of the cell with nonconjugated sensitizer CBTR (8.92 %) under the same fabrication conditions. The variation in the performance of these two dyes demonstrated that elongating the conjugated light-harvesting antenna resulted in the reduction of short-circuit photocurrent density, which might have been due to the aggregation of dye molecules. In the presence of a coabsorbate, chenodeoxycholic acid, the CB104-sensitized cell exhibited an enhanced photocurrent density and achieved a photovoltaic efficiency of 8.36 %.

摘要

一种新型基于卡宾的钌敏化剂 CB104,具有高度共轭的辅助配体,二苯基乙烯基噻吩取代的苯并咪唑吡啶,被设计和开发用于染料敏化太阳能电池应用。研究了噻吩天线对用 CB104 锚定的电池性能的影响。与染料 CBTR 相比,CB104 辅助配体中的共轭噻吩增强了分子内 π-π*跃迁的摩尔消光系数和较低能量的金属-配体电荷转移带的强度。然而,用 CB104(0.15mM)固定的电池的入射光子-电流转换效率光谱在 420nm 处显示出最大的 63%。用染料 CB104 敏化的电池获得了 7.30%的功率转换效率,在相同的制造条件下,低于用非共轭敏化剂 CBTR(8.92%)固定的电池。这两种染料性能的变化表明,延长共轭光捕获天线会导致短路光电流密度降低,这可能是由于染料分子的聚集。在共吸收体胆酸的存在下,CB104 敏化电池表现出增强的光电流密度,并实现了 8.36%的光伏效率。

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