Department of Chemical Engineering, National Chung Hsing University , 145 Xingda Road, South District, Taichung 402, Taiwan.
ACS Appl Mater Interfaces. 2018 Jan 24;10(3):2658-2666. doi: 10.1021/acsami.7b18351. Epub 2018 Jan 12.
Titanium (Ti) has high potential in many practical applications such as biomedicine, architecture, aviation, and energy. In this study, we demonstrate an innovative application of dye-sensitized solar cells (DSSCs) based on Ti photoanodes that can be integrated into the roof engineering of large-scale architectures. A chromatic Ti foil produced by anodizing oxidation (coloring) technology is an attractive roof material for large-scale architecture, showing a colorful appearance due to the formation of a reflective TiO thin layer on both surfaces of Ti. The DSSC is fabricated on the backside of the chromatic Ti foil using the Ti foil as the working electrode, and this roof-DSSC hybrid configuration can be designed as an energy harvesting device for indoor artificial lighting. Our results show that the facet-textured TiO layer on the chromatic Ti foil not only improves the optical reflectance for better light utilization but also effectively suppresses the charge recombination for better electron collection. The power conversion efficiency of the roof-DSSC hybrid system is improved by 30-40% with a main contribution from an improvement of short-circuit current density under standard 1 sun and dim-light (600-1000 lx) illumination.
钛(Ti)在许多实际应用中具有很高的潜力,例如生物医学、建筑、航空和能源。在本研究中,我们展示了基于 Ti 光阳极的染料敏化太阳能电池(DSSC)的创新应用,该电池可以集成到大尺寸建筑的屋顶工程中。通过阳极氧化(着色)技术生产的彩色 Ti 箔是一种有吸引力的大尺寸建筑屋顶材料,由于 Ti 两面形成了反射性 TiO 薄膜,因此呈现出多彩的外观。使用 Ti 箔作为工作电极,在彩色 Ti 箔的背面制造 DSSC,这种屋顶-DSSC 混合配置可以设计为用于室内人工照明的能量收集装置。我们的结果表明,彩色 Ti 箔上的面织构 TiO 层不仅提高了光学反射率以更好地利用光,而且还有效地抑制了电荷复合以更好地收集电子。屋顶-DSSC 混合系统的功率转换效率提高了 30-40%,这主要归因于标准 1 太阳和暗光(600-1000 lx)照明下短路电流密度的提高。