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Solvent Effects on the Adsorption Geometry and Electronic Structure of Dye-Sensitized TiO2: A First-Principles Investigation

机译:溶剂对染料敏化的TiO2吸附几何结构和电子结构的影响:第一性原理研究

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摘要

The performance of dye-sensitized solar cells (DSSCs) depends significantly on the adsorption geometry of the dye on the semiconductor surface. In turn, the stability and geometry of the adsorbed molecules is influenced by the chemical environment at the electrolyte/ dye/TiO2 interface. To gain insight into the effect of the solvent on the adsorption geometries and electronic properties of dye-sensitized TiO2 interfaces, we carried out first-principles calculations on organic dyes and solvent (water or acetonitrile) molecules coadsorbed on the (101) surface of anatase TiO2, Solvent molecules introduce important modifications on the dye adsorption geometry with respect to the geometry calculated in vacuo. In particular, the bonding distance of the dye from the Ti anchoring atoms increases, the adsorption energy decreases, and the two C—O bonds in the carboxylic moieties become more symmetric than in vacuo. Moreover, the adsorbed solvent induces the deprotonation of the dye due to the changing the acid/base properties of the system. Analysis of the electronic structure for the dye-sensitized TiO2 structures in the presence of coadsorbed solvent molecules shows an upward shift in the TiO2 conduction band of 0.2 to 0.5 eV (0.5 to 0.8 eV) in water (acetonitrile). A similar shift is calculated for a solvent monolayer on unsensitized TiO2. The overall picture extracted from our calculations is consistent with an upshift of the conduction band in acetonitrile (2.04 eV vs SCE) relative to water (0.82 eV vs SCE, pH 7), as reported in previous studies on TiO2 flatband potential (Redmond, G.; Fitzmaurice, D. J. Phys. Ghem. 1993, 97, 1426—1430) and suggests a relevant role of the solvent in determining the dye-semiconductor interaction and electronic coupling.
机译:染料敏化太阳能电池(DSSC)的性能在很大程度上取决于染料在半导体表面上的吸附几何形状。继而,被吸附分子的稳定性和几何形状受电解质/染料/ TiO 2界面处的化学环境影响。为了深入了解溶剂对染料敏化的TiO2界面的吸附几何形状和电子性能的影响,我们对有机染料和锐钛矿(101)表面共吸附的溶剂(水或乙腈)分子进行了第一性原理计算相对于真空计算,TiO2溶剂分子对染料的吸附几何形状产生了重要的影响。特别地,染料与Ti锚定原子的键合距离增加,吸附能降低,并且羧基部分中的两个CO键比在真空中更对称。而且,由于体系的酸/碱性质的变化,吸附的溶剂引起染料的去质子化。在共吸附的溶剂分子存在下,染料敏化的TiO2结构的电子结构的分析表明,在水(乙腈)中,TiO2导带的上移为0.2到0.5 eV(0.5到0.8 eV)。对于未敏化的TiO2上的溶剂单层,计算出了类似的变化。正如先前关于TiO2平带电势的研究(Redmond,G)所报道的那样,从我们的计算中提取的总体图片与乙腈的导带(2.04 eV vs SCE)相对于水(0.82 eV vs SCE,pH 7)的上移相一致。 ; Fitzmaurice,DJ Phys.Ghem.1993,97,1426-1430),并提出溶剂在确定染料-半导体相互作用和电子偶联中的相关作用。

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