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Hematoporphyrin-ZnO Nanohybrids: Twin Applications in Efficient Visible-Light Photocatalysis and Dye-Sensitized Solar Cells

机译:血卟啉-ZnO纳米杂化物:在高效可见光光催化和染料敏化太阳能电池中的双重应用

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摘要

Light-harvesting nanohybrids (LHNs) are systems composed of an inorganic nanostructure associated with an organic pigment that have been exploited to improve the light-harvesting performance over individual components. The present study is focused on developing a potential LHN, attained by the functionalization of dense arrays of ZnO nanorods (NRs) with a biologically important organic pigment hematoporphyrin (HP), which is an integral part of red blood cells (hemoglobin). Application of spectroscopic techniques, namely, Fourier transform infrared spectroscopy (FTIR) and Raman scattering, confirm successful monodentate binding of HP carboxylic groups to Zn~(2+) located at the surface of ZnO NRs. Picosecond-resolved fluorescence studies on the resulting HP-ZnO nanohybrid show efficient electron migration from photoexcited HP to the host ZnO NRs. This essential photoinduced event activates the LHN under sunlight, which ultimately leads to the realization of visible-light photocatalysis (VLP) of a model contaminant Methylene Blue (MB) in aqueous solution. A control experiment in an inert gas atmosphere clearly reveals that the photocatalytic activity is influenced by the formation of reactive oxygen species (ROS) in the media. Furthermore, the stable LHNs prepared by optimized dye loading have also been used as an active layer in dye-sensitized solar cells (DSSCs). We believe these promising LHNs to find their dual applications in organic electronics and for the treatment of contaminant wastewater.
机译:聚光纳米复合物(LHN)是由与有机颜料缔合的无机纳米结构组成的系统,已被开发用于改善单个组件的聚光性能。本研究的重点是开发潜在的LHN,这是通过将ZnO纳米棒(NRs)的密集阵列与具有生物学重要性的有机色素血卟啉(HP)功能化来实现的,该色素是红细胞(血红蛋白)的组成部分。光谱技术的应用,即傅立叶变换红外光谱(FTIR)和拉曼散射,证实了HP羧基与位于ZnO NRs表面的Zn〜(2+)的成功单齿结合。皮秒分辨的荧光研究对所得的HP-ZnO纳米杂化物显示出有效的电子从光激发的HP迁移到主体ZnO NRs。这种重要的光诱导事件在阳光下激活了LHN,最终导致了水溶液中模型污染物亚甲基蓝(MB)的可见光光催化(VLP)的实现。在惰性气体气氛中的对照实验清楚地表明,光催化活性受介质中活性氧种类(ROS)形成的影响。此外,通过优化的染料负载量制备的稳定的LHN也已用作染料敏化太阳能电池(DSSC)的活性层。我们相信,这些有前途的LHN可以在有机电子产品和污水处理中找到双重应用。

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