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Nanoscale connectivity in a TiO2/CdSe quantum dots/functionalized graphene oxide nanosheets/Au nanoparticles composite for enhanced photoelectrochemical solar cell performance

机译:TiO2 / CdSe量子点/功能化氧化石墨烯纳米片/ Au纳米颗粒复合材料中的纳米级连接性,可增强光电化学太阳能电池的性能

摘要

Electron transfer dynamics in a photoactive coating made of CdSe quantum dots (QDs) and Au nanoparticles (NPs) tethered to a framework of ionic liquid functionalized graphene oxide (FGO) nanosheets and mesoporous titania (TiO 2) was studied. High resolution transmission electron microscopy analyses on TiO2/CdSe/FGO/Au not only revealed the linker mediated binding of CdSe QDs with TiO2 but also, surprisingly, revealed a nanoscale connectivity between CdSe QDs, Au NPs and TiO2 with FGO nanosheets, achieved by a simple solution processing method. Time resolved fluorescence decay experiments coupled with the systematic quenching of CdSe emission by Au NPs or FGO nanosheets or by a combination of the latter two provide concrete evidences favoring the most likely pathway of ultrafast decay of excited CdSe in the composite to be a relay mechanism. A balance between energetics and kinetics of the system is realized by alignment of conduction band edges, whereby, CdSe QDs inject photogenerated electrons into the conduction band of TiO2, from where, electrons are promptly transferred to FGO nanosheets and then through Au NPs to the current collector. Conductive-atomic force microscopy also provided a direct correlation between the local nanostructure and the enhanced ability of composite to conduct electrons. Point contact I-V measurements and average photoconductivity results demonstrated the current distribution as well as the population of conducting domains to be uniform across the TiO2/CdSe/FGO/Au composite, thus validating the higher photocurrent generation. A six-fold enhancement in photocurrent and a 100 mV increment in photovoltage combined with an incident photon to current conversion efficiency of 27%, achieved in the composite, compared to the inferior performance of the TiO2/CdSe/Au composite imply that FGO nanosheets and Au NPs work in tandem to promote charge separation and furnish less impeded pathways for electron transfer and transport. Such a hierarchical rapid electron transfer model can be adapted to other nanostructures as well, as they can favorably impact photoelectrochemical performance
机译:研究了由CdSe量子点(QDs)和Au纳米颗粒(NPs)束缚在离子液体功能化氧化石墨烯(FGO)纳米片和中孔二氧化钛(TiO 2)框架上的光敏涂层中的电子传输动力学。 TiO2 / CdSe / FGO / Au的高分辨率透射电子显微镜分析不仅揭示了连接子介导的CdSe QD与TiO2的结合,而且令人惊讶地揭示了CdSe QD,Au NPs和TiO2与FGO纳米片之间的纳米级连接。简单的溶液处理方法。时间分辨的荧光衰减实验与Au NPs或FGO纳米片或后两者的组合对CdSe发射的系统猝灭相结合,提供了具体的证据,表明复合物中被激发的CdSe超快衰减的最可能途径是一种中继机制。通过调整导带边缘实现系统能量与动力学之间的平衡,从而CdSe量子点将光生电子注入TiO2的导带中,从那里电子迅速转移到FGO纳米片,然后通过金纳米粒子流到电流集电极。导电原子力显微镜还提供了局部纳米结构与复合材料增强电子传导能力之间的直接关系。点接触I-V测量和平均光电导率结果表明,在TiO2 / CdSe / FGO / Au复合材料中,电流分布以及导电域的数量均匀,从而验证了更高的光电流产生。与TiO2 / CdSe / Au复合材料的较差性能相比,复合材料中的光电流增强了六倍,光电压增加了100 mV,入射光子至电流的转换效率达到27%,这意味着FGO纳米片和金纳米粒子协同工作,以促进电荷分离,并为电子转移和运输提供较少障碍的途径。这种分级的快速电子转移模型也可以适用于其他纳米结构,因为它们可以有利地影响光电化学性能

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