Department of Materials Science and Engineering and ‡Department of Chemistry, University of Wisconsin-Madison , Madison, Wisconsin 53706, United States.
ACS Nano. 2015 Jan 27;9(1):564-72. doi: 10.1021/nn5058672. Epub 2015 Jan 5.
Three-dimensional (3D) nanowire (NW) architectures are considered as superior electrode design for photovoltaic devices compared to NWs or nanoparticle systems in terms of improved large surface area and charge transport properties. In this paper, we report development of lead iodide perovskite solar cells based on a novel 3D TiO2 NW architectures. The 3D TiO2 nanostructure was synthesized via surface-reaction-limited pulsed chemical vapor deposition (SPCVD) technique that also implemented the Kirkendall effect for complete ZnO NW template conversion. It was found that the film thickness of 3D TiO2 can significantly influence the photovoltaic performance. Short-circuit current increased with the TiO2 length, while open-circuit voltage and fill factor decreased with the length. The highest power conversion efficiency (PCE) of 9.0% was achieved with ∼ 600 nm long 3D TiO2 NW structures. Compared to other 1D nanostructure arrays (TiO2 nanotubes, TiO2-coated ZnO NWs and ZnO NWs), 3D TiO2 NW architecture was able to achieve larger amounts of perovskite loading, enhanced light harvesting efficiency, and increased electron-transport property. Therefore, its PCE is 1.5, 2.3, and 2.8 times higher than those of TiO2 nanotubes, TiO2-coated ZnO NWs, and ZnO NWs, respectively. The unique morphological advantages, together with the largely suppressed hysteresis effect, make 3D hierarchical TiO2 a promising electrode selection in designing high-performance perovskite solar cells.
三维(3D)纳米线(NW)结构被认为是比 NW 或纳米颗粒系统更优越的光伏器件电极设计,因为其具有改善的大表面积和电荷输运性能。在本文中,我们报告了基于新型 3D TiO2 NW 结构的碘化铅钙钛矿太阳能电池的开发。3D TiO2 纳米结构是通过表面反应限制脉冲化学气相沉积(SPCVD)技术合成的,该技术还实施了 Kirkendall 效应,以实现完全转化 ZnO NW 模板。研究发现,3D TiO2 的薄膜厚度会显著影响光伏性能。短路电流随 TiO2 长度的增加而增加,而开路电压和填充因子随长度的增加而降低。当 3D TiO2 NW 结构的长度约为 600nm 时,获得了 9.0%的最高功率转换效率(PCE)。与其他一维纳米结构阵列(TiO2 纳米管、TiO2 涂覆 ZnO NW 和 ZnO NW)相比,3D TiO2 NW 结构能够实现更多的钙钛矿负载、增强的光捕获效率和增加的电子输运性能。因此,其 PCE 分别比 TiO2 纳米管、TiO2 涂覆 ZnO NW 和 ZnO NW 高 1.5、2.3 和 2.8 倍。独特的形态优势,加上大大抑制的滞后效应,使得 3D 分级 TiO2 成为设计高性能钙钛矿太阳能电池的有前途的电极选择。