首页> 外文期刊>ACS applied materials & interfaces >Effects of Surface Modification on Dye-Sensitized Solar Cell Based on an Organic Dye with Naphtho[2,1-b:3,4-b']dithiophene as the Conjugated Linker
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Effects of Surface Modification on Dye-Sensitized Solar Cell Based on an Organic Dye with Naphtho[2,1-b:3,4-b']dithiophene as the Conjugated Linker

机译:以萘并[2,1-b:3,4-b']二噻吩为共轭连接基的有机染料对表面敏化的染料敏化太阳能电池的影响

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We have investigated the effects of surface modification on the dye-sensitized solar cell (DSSC) based on a donor-(π-spacer)-acceptor organic dye. A major challenge for donor-(π-spacer)-acceptor molecules as sensitizers in DSSCs is the fast recombination reactions that occur at both the photoanode (e.g., TiO2) surface and the fluorine-doped tin oxide (FTO) electrode, which presents unfavorable effects on the DSSC performance. The two interfaces of TiO2/electrolyte and FTO/ electrolyte are passivated selectively in a DSSC using an organic dye with Naphtho[2,1-b:3,4-b']dithiophene as the conjugated linker and the I~-/I_3~- electrolyte. The current density-voltage characteristics, the dark current analysis, the open circuit voltage-light intensity dependence, and the transient photovoltage/photocurrent results indicate that the recombination processes are affected strongly by surface passivation under variable light intensity. At high light intensity, the recombination reaction at the TiO2 surface is dominant. In this case, silane passivation of the TiO2 surface can suppress recombination significantly, while the c-TiO2 layer makes little contribution to the reduction of the recombination. At low illumination intensity, the recombination at FTO becomes significant, and the recombination can be reduced by applying a c-TiO2 layer.
机译:我们已经研究了基于供体-(π-间隔子)-受体有机染料的表面改性对染料敏化太阳能电池(DSSC)的影响。在DSSC中,供体(π-间隔)受体分子作为敏化剂的主要挑战是在光电阳极(例如TiO2)表面和氟掺杂的氧化锡(FTO)电极上发生的快速重组反应。对DSSC性能的影响。使用萘酚[2,1-b:3,4-b']二噻吩作为共轭接头和I〜-/ I_3〜的有机染料,在DSSC中选择性地钝化TiO2 /电解质和FTO /电解质的两个界面-电解质。电流密度-电压特性,暗电流分析,开路电压-光强度依赖性以及瞬态光电压/光电流结果表明,在可变光强度下,表面钝化对复合过程的影响很大。在高光强度下,TiO2表面的重组反应占主导。在这种情况下,TiO 2表面的硅烷钝化可以显着抑制复合,而c-TiO 2层对复合的减少几乎没有贡献。在低照度下,在FTO处的重组变得显着,并且可以通过应用c-TiO2层来减少重组。

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