ARC Centre of Excellence for Functional Nanomaterials, School of Chemical Engineering and AIBN, The University of Queensland, QLD 4072 (Australia), Fax: (+61) 7-33654199.
Chemistry. 2013 Sep 27;19(40):13569-74. doi: 10.1002/chem.201300999. Epub 2013 Aug 12.
One-dimensional (1D) TiO2 nanostructures are desirable as photoanodes in dye-sensitized solar cells (DSSCs) due to their superior electron-transport capability. However, making use of the DSSC performance of 1D rutile TiO2 photoanodes remains challenging, mainly due to the small surface area and consequently low dye loading. Herein, a new type of photoanode with a three-dimensional (3D) rutile-nanorod-based network structure directly grown on fluorine-doped tin oxide (FTO) substrates was developed by using a facile two-step hydrothermal process. The resultant photoanode possesses oriented rutile nanorod arrays for fast electron transport as the bottom layer and radially packed rutile head-caps with an improved large surface area for efficient dye adsorption. The diffuse reflectance spectra showed that with the radially packed top layer, the light-harvesting efficiency was increased due to an enhanced light-scattering effect. A combination of electrochemical impedance spectroscopy (EIS), dark current, and open-circuit voltage decay (OCVD) analyses confirmed that the electron-recombiantion rate was reduced on formation of the nanorod-based 3D network for fast electron transport. As a resut, a light-to-electricity conversion efficiency of 6.31% was achieved with this photoanode in DSSCs, which is comparable to the best DSSC efficiencies that have been reported to date for 1D rutile TiO2 .
一维(1D)TiO2 纳米结构因其优异的电子传输能力而成为染料敏化太阳能电池(DSSC)中的理想光阳极。然而,利用 1D 金红石 TiO2 光阳极的 DSSC 性能仍然具有挑战性,主要是由于其比表面积较小,因此染料负载量较低。在此,通过使用简便的两步水热工艺,在掺氟氧化锡(FTO)基底上直接生长了一种具有三维(3D)金红石纳米棒基网络结构的新型光阳极。所得光阳极具有定向金红石纳米棒阵列作为底层,用于快速电子传输,以及径向堆积的金红石帽,具有改进的大表面积,用于高效染料吸附。漫反射光谱表明,由于光散射效应增强,具有径向堆积顶层的光捕获效率增加。电化学阻抗谱(EIS)、暗电流和开路电压衰减(OCVD)分析的组合证实,由于形成基于纳米棒的 3D 网络,电子复合率降低,从而实现快速电子传输。结果,在 DSSC 中,这种光阳极的光电转换效率达到了 6.31%,与迄今为止报道的 1D 金红石 TiO2 的最佳 DSSC 效率相当。