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高性能Förster 共振能量转移(FRET)基染料敏化太阳能电池:量子点的合理设计以实现宽光谱太阳能利用。

High-performance Förster resonance energy transfer (FRET)-based dye-sensitized solar cells: rational design of quantum dots for wide solar-spectrum utilization.

机构信息

World Class University (WCU) Program of Chemical Convergence for Energy & Environment (C2E2), School of Chemical and Biological Engineering, College of Engineering, Seoul National University, Daehak-dong, Seoul 151-747, Korea.

出版信息

Chemistry. 2013 Jul 29;19(31):10280-6. doi: 10.1002/chem.201300953. Epub 2013 Jun 13.

Abstract

High-performance Förster resonance energy transfer (FRET)-based dye-sensitized solar cells (DSSCs) have been successfully fabricated through the optimized design of a CdSe/CdS quantum-dot (QD) donor and a dye acceptor. This simple approach enables quantum dots and dyes to simultaneously utilize the wide solar spectrum, thereby resulting in high conversion efficiency over a wide wavelength range. In addition, major parameters that affect the FRET interaction between donor and acceptor have been investigated including the fluorescent emission spectrum of QD, and the content of deposited QDs into the TiO2 matrix. By judicious control of these parameters, the FRET interaction can be readily optimized for high photovoltaic performance. In addition, the as-synthesized water-soluble quantum dots were highly dispersed in a nanoporous TiO2 matrix, thereby resulting in excellent contact between donors and acceptors. Importantly, high-performance FRET-based DSSCs can be prepared without any infrared (IR) dye synthetic procedures. This novel strategy offers great potential for applications of dye-sensitized solar cells.

摘要

通过对 CdSe/CdS 量子点(QD)供体和染料受体的优化设计,成功制备了高性能的Förster 共振能量转移(FRET)基染料敏化太阳能电池(DSSC)。这种简单的方法使量子点和染料能够同时利用宽的太阳光谱,从而在宽波长范围内实现高的转换效率。此外,还研究了影响供体和受体之间 FRET 相互作用的主要参数,包括 QD 的荧光发射光谱和 QD 在 TiO2 基质中的沉积量。通过明智地控制这些参数,可以很容易地优化 FRET 相互作用以获得高的光伏性能。此外,合成的水溶性量子点在纳米多孔 TiO2 基质中高度分散,从而使供体和受体之间具有良好的接触。重要的是,无需任何红外(IR)染料合成程序即可制备高性能的基于 FRET 的 DSSC。这种新策略为染料敏化太阳能电池的应用提供了巨大的潜力。

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