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用于染料敏化太阳能电池对电极的反蛋白石碳材料。

Inverse opal carbons for counter electrode of dye-sensitized solar cells.

机构信息

Department of Chemical and Biomolecular Engineering, Sogang University, Seoul, South Korea.

出版信息

Langmuir. 2012 May 1;28(17):7033-8. doi: 10.1021/la300644j. Epub 2012 Apr 17.

Abstract

We investigated the fabrication of inverse opal carbon counter electrodes using a colloidal templating method for DSSCs. Specifically, bare inverse opal carbon, mesopore-incoporated inverse opal carbon, and graphitized inverse opal carbon were synthesized and stably dispersed in ethanol solution for spray coating on a FTO substrate. The thickness of the electrode was controlled by the number of coatings, and the average relative thickness was evaluated by measuring the transmittance spectrum. The effect of the counter electrode thickness on the photovoltaic performance of the DSSCs was investigated and analyzed by interfacial charge transfer resistance (R(CT)) under EIS measurement. The effect of the surface area and conductivity of the inverse opal was also investigated by considering the increase in surface area due to the mesopore in the inverse opal carbon and conductivity by graphitization of the carbon matrix. The results showed that the FF and thereby the efficiency of DSSCs were increased as the electrode thickness increased. Consequently, the larger FF and thereby the greater efficiency of the DSSCs were achieved for mIOC and gIOC compared to IOC, which was attributed to the lower R(CT). Finally, compared to a conventional Pt counter electrode, the inverse opal-based carbon showed a comparable efficiency upon application to DSSCs.

摘要

我们使用胶体模板法研究了用于 DSSC 的反蛋白石碳对电极的制造。具体来说,制备了裸反蛋白石碳、中孔嵌入反蛋白石碳和石墨化反蛋白石碳,并将其稳定分散在乙醇溶液中,用于喷涂在 FTO 基底上。通过涂层数量控制电极的厚度,并通过测量透光率谱来评估平均相对厚度。通过界面电荷转移电阻(R(CT))在 EIS 测量下研究和分析了对电极厚度对 DSSC 光伏性能的影响。还考虑了由于反蛋白石碳中的中孔而增加的表面积以及碳基质石墨化而增加的电导率,研究了反蛋白石的表面积和导电性的影响。结果表明,随着电极厚度的增加,FF 以及 DSSC 的效率增加。因此,与 IOC 相比,mIOC 和 gIOC 的更大 FF 以及更高的 DSSC 效率归因于更低的 R(CT)。最后,与传统的 Pt 对电极相比,将基于反蛋白石的碳应用于 DSSC 时表现出相当的效率。

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