Optoelectronic Materials Lab, Korea Institute of Science and Technology , Seoul 136-791, Korea.
ACS Appl Mater Interfaces. 2012 Jun 27;4(6):3308-15. doi: 10.1021/am3007164. Epub 2012 Jun 8.
Hierarchically structured TiO2 (HS-TiO2) was prepared on a flexible ITO-PEN (polyethylene naphthalate) substrate via electrospray deposition using a commercially available TiO2 nanocrystalline powder in order to fabricate flexible DSSCs under low-temperature (<150 °C) conditions. The cell efficiency increased when using flexible ITO-PEN substrates post-treated by either a mechanical compression treatment or a chemical sintering treatment using titanium n-tetrabutoxide (TTB). The mechanical compression treatment reduced the surface area and porosity of the HS-TiO2; however, this treatment improved the interparticle connectivity and physical adhesion between the HS-TiO2 and ITO-PEN substrate, which increased the photocurrent density of the as-pressed HS-TiO2 cells. The electron diffusion coefficients of the as-pressed HS-TiO2 improved upon compression treatment, whereas the recombination lifetimes remained unchanged. An additional chemical sintering post-treatment involving TTB was tested for its effects on DSSC efficiency. The freshly coated TiO2 submitted to TTB hydrolysis in water at 100 °C yielded an anatase phase. TTB treatment of the HS-TiO2 cell after compression treatment yielded faster electron diffusion, providing an efficiency of 5.57% under 100 mW cm(-2), AM 1.5 global illumination.
采用商品化的锐钛矿纳米 TiO2 粉体制备了具有分级结构的 TiO2(HS-TiO2),并通过静电喷雾沉积法在柔性 ITO-PEN(聚萘二甲酸乙二醇酯)基底上低温(<150°C)制备了柔性染料敏化太阳能电池。经过机械压缩处理或钛酸四丁酯(TTB)化学烧结处理的柔性 ITO-PEN 基底,能提高电池效率。机械压缩处理减小了 HS-TiO2 的比表面积和孔隙率,但增强了 HS-TiO2 与 ITO-PEN 基底之间的颗粒间连接和物理附着,从而提高了 HS-TiO2 电池的短路电流密度。压缩处理提高了 HS-TiO2 的电子扩散系数,而复合寿命保持不变。此外,还对柔性 HS-TiO2 电池进行了 TTB 后化学烧结处理,以评估其对 DSSC 效率的影响。新鲜涂覆的 TiO2 在 100°C 下的水中进行 TTB 水解,得到锐钛矿相。经压缩处理后,HS-TiO2 电池的 TTB 处理能使电子扩散更快,在 100 mW cm(-2)、AM 1.5 全球光照下的效率达到 5.57%。