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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Photosensitization of nanoparticulate TiO2 using a Re(I)-polypyridyl complex: studies on interfacial electron transfer in the ultrafast time domain
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Photosensitization of nanoparticulate TiO2 using a Re(I)-polypyridyl complex: studies on interfacial electron transfer in the ultrafast time domain

机译:Re(I)-聚吡啶配合物对纳米TiO2的光敏作用:超快时域中界面电子转移的研究

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We have synthesized a new photoactive rhenium(I)-complex having a pendant catechol functionality [Re(CO)3Cl(L)] (1) (L is 4-[2-(4'-methyl-2,2'-bipyridinyl-4-yl)vinyl]benzene-l,2-diol) for studying the dynamics of the interfacial electron transfer between nanoparticulate TiO2 and the photoexcited states of this Re(I)-complex using femtosecond transient absorption spectroscopy. Our steady state absorption studies revealed that complex 1 can bind strongly to TiO2 surfaces through the catechol functionality with the formation of a charge transfer (CT) complex, which has been confirmed by the appearance of a new red-shifted CT band. The longer wavelength absorption band for 1, bound to TiO2 through the proposed catecholate functionality, could also be explained based on the DFT calculations. Dynamics of the interfacial electron transfer between 1 and TiO2 nanoparticles was investigated by studying kinetics at various wavelengths in the visible and near infrared regions. Electron injection into the conduction band of the nanoparticulate TiO2 was confirmed by detection of the conduction band electron in TiO2 ([e-]_(TiO2 ~(CB)) and the cation radical of the adsorbed dye (1~·+) in real time as monitored by transient absorption spectroscopy. A single exponential and pulse-width limited (<100 fs) electron injection was observed. Back electron transfer dynamics was determined by monitoring the decay kinetics of 1·+ and [e-]_(TiO2 ~(CB)).
机译:我们合成了具有邻苯二酚官能团[Re(CO)3Cl(L)](1)(L为4- [2-(4'-甲基-2,2'-联吡啶基)的新型光敏photo(I)络合物-4-基)乙烯基]苯-1,2-二醇)用于研究飞秒瞬态吸收光谱法研究纳米颗粒TiO2与该Re(I)络合物的光激发态之间的界面电子转移动力学。我们的稳态吸收研究表明,配合物1可以通过邻苯二酚功能牢固地与TiO2表面结合,并形成电荷转移(CT)配合物,这已经由新的红移CT带出现而得到证实。通过DFT计算,也可以解释通过建议的儿茶酚官能团与TiO2结合的1的更长的波长吸收带。通过研究可见光和近红外区域中各种波长的动力学,研究了1和TiO2纳米颗粒之间界面电子转移的动力学。通过检测TiO2中的导带电子([e-] _(TiO2〜(CB))和被吸附的染料的阳离子自由基(1〜·+)的确证,将电子注入到纳米TiO2的导带中。用瞬态吸收光谱法监测时间,观察到单次指数和脉冲宽度限制(<100 fs)的电子注入,通过监测1·+和[e-] _(TiO2〜 (CB))。

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