Department of Chemical and Biomolecular Engineering, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 120-749, South Korea.
ChemSusChem. 2013 May;6(5):856-64. doi: 10.1002/cssc.201300117. Epub 2013 Apr 9.
A highly reflective counter electrode is prepared through the deposition of alternating layers of organized mesoporous TiO(2) (om-TiO(2)) and colloidal SiO(2) (col-SiO(2)) nanoparticles. We present the effects of introducing this counter electrode into dye-sensitized solar cells (DSSCs) for maximizing light harvesting properties. The om-TiO(2) layers with a high refractive index are prepared by using an atomic transfer radical polymerization and a sol-gel process, in which a polyvinyl chloride-g-poly(oxyethylene) methacrylate graft copolymer is used as a structure-directing agent. The col-SiO(2) layers with a low refractive index are prepared by spin-coating commercially available silica nanoparticles. The properties of the Bragg stack (BS)-functionalized counter electrode in DSSCs are analyzed by using a variety of techniques, including spectroscopic ellipsometry, SEM, UV/Vis spectroscopy, incident photon-to-electron conversion efficiency, electrochemical impedance spectroscopy, and intensity modulated photocurrent/voltage spectroscopy measurements, to understand the critical factors contributing to the cell performance. When incorporated into DSSCs that are used in conjunction with a polymerized ionic liquid as the solid electrolyte, the energy conversion efficiency of this solid-state DSSC (ssDSSC) approaches 6.6 %, which is one of the highest of the reported N719 dye-based ssDSSCs. Detailed optical and electrochemical analyses of the device performance show that this assembly yields enhanced light harvesting without the negative effects of charge recombination or electrolyte penetration, which thus, presents new possibilities for effective light management.
高度反射性对电极通过交替沉积有序介孔 TiO2(om-TiO2)和胶体 SiO2(col-SiO2)纳米粒子来制备。我们介绍了将这种对电极引入染料敏化太阳能电池(DSSC)以最大程度地提高光捕获性能的效果。高折射率的 om-TiO2 层是通过原子转移自由基聚合和溶胶-凝胶工艺制备的,其中使用聚氯乙烯-g-聚(氧乙烯)甲基丙烯酸酯接枝共聚物作为结构导向剂。低折射率的 col-SiO2 层是通过旋涂市售的二氧化硅纳米粒子制备的。通过使用各种技术,包括光谱椭圆光度法、SEM、UV/Vis 光谱法、入射光子-电子转换效率、电化学阻抗谱法和强度调制光电流/电压谱法,对具有布拉格堆叠(BS)功能的对电极在 DSSC 中的性能进行分析,以了解对电池性能有贡献的关键因素。当与聚合离子液体一起用于固态电解质的 DSSC 中时,该固态 DSSC(ssDSSC)的能量转换效率接近 6.6%,这是报道的基于 N719 染料的 ssDSSC 中最高的之一。对器件性能的详细光学和电化学分析表明,这种组装可以增强光捕获,而不会产生电荷复合或电解质渗透的负面影响,从而为有效的光管理提供了新的可能性。