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芘-Ipa 棒敏化纳米结构 TiO2 中界面相互作用的计算。

Calculations of interfacial interactions in pyrene-Ipa rod sensitized nanostructured TiO2.

机构信息

Department of Chemical Physics, Lund University, Box 124, SE-22100, Lund, Sweden.

出版信息

Dalton Trans. 2009 Dec 7(45):10021-31. doi: 10.1039/b910880g. Epub 2009 Oct 22.

Abstract

Pyrene chromophores carrying different rigid rod spacer groups (ethynylene, ethynylene-phenylene-ethynylene, and ethynylene-bicyclo[2.2.2]octylene-ethynylene) and bound to TiO2 nanostructured materials via an isophthalic acid (Ipa) anchor group have been investigated using quantum chemical calculations in order to elucidate structural and electronic properties of dye-sensitized semiconductor structures capable of long-range photoinduced interfacial electron transfer. The calculations are used to study firstly the effect of the anchor and spacer groups on the electronic properties of the pyrene-dyes, secondly the binding of isophthalic acid to nanostructured TiO2, and thirdly the interfacial electronic interactions for dye-sensitized nanostructured TiO2 relevant to dye-sensitized solar cell applications. Together, these calculations provide theoretical insights into the effect of incorporating rigid rod anchor-cum-spacer group motifs in sensitizers for e.g. solar cell applications. In particular, the calculations help to rationalize the strong influence of the rods on the photophysical properties of the sensitizers in terms of electronic interactions between the individual chromophore, spacer, and anchor segments, as well as to provide information about interfacial electronic interactions of interest for the capabilities of the rods to act as efficient mediators of photoinduced interfacial charge separation.

摘要

已通过量子化学计算研究了通过间苯二甲酸 (Ipa) 锚定基团连接到 TiO2 纳米结构材料的带有不同刚性棒状间隔基(乙炔基、乙炔基-苯乙炔基-乙炔基和乙炔基-双环[2.2.2]辛基-乙炔基)的芘生色团,以便阐明能够进行长程光诱导界面电子转移的染料敏化半导体结构的结构和电子特性。这些计算首先用于研究锚定和间隔基对芘染料电子性质的影响,其次用于研究间苯二甲酸与纳米结构 TiO2 的结合,最后用于研究与染料敏化纳米结构 TiO2 相关的界面电子相互作用,与染料敏化太阳能电池应用有关。这些计算共同为例如在太阳能电池应用中,将刚性棒状锚定-间隔基基序纳入敏化剂的效果提供了理论见解。特别是,这些计算有助于根据各个生色团、间隔基和锚定段之间的电子相互作用来合理说明棒状结构对敏化剂光物理性质的强烈影响,并提供有关界面电子相互作用的信息,这些信息对于棒状结构作为光诱导界面电荷分离的有效介体的能力很重要。

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