School of Materials Science and Engineering, Hefei University of Technology, Hefei, Anhui 230009, People's Republic of China.
ACS Appl Mater Interfaces. 2012 Jan;4(1):17-23. doi: 10.1021/am201425n. Epub 2011 Dec 15.
Heterostructured ZnO/ZnS core/shell nanowire arrays have been successfully fabricated to serve as photoanode for the dye-sensitized solar cells (DSSCs) by a facile two-step approach, combining hydrothermal deposition and liquid-phase chemical conversion process. The morphology evolution of the ZnS coated on the ZnO nanowires and its effect on the performance of the DSSCs were systematically investigated by varying the reaction time during the chemical conversion process. The results show that the compact ZnS shell can effectively promote the photogenerated electrons transfer from the excited dye molecules to the conduction band of the ZnO, simultaneously suppress the recombination for the injected elelctrons from the dye and the redox electrolyte. As reaction time goes by, the surface of the nanowires becomes coarse because of the newly formed ZnS nanoparticles, which will enhance the dye loading, resulting in increment of the short-circuit current density (J(SC)) . Open-circuit photovoltage decay measurements also show that the electron lifetime (τ(n)) in the ZnO/ZnS core/shell nanostructures can be significantly prolonged because of the lower surface trap density in the ZnO after ZnS coating. For the ZnO/ZnS core/shell nanostructures, the J(SC) and η can reach a maximum of 8.38 mA/cm(2) and 1.92% after 6 h conversion time, corresponding to 12- and 16-fold increments of as-synthesized ZnO, respectively.
通过两步法,即水热沉积和液相化学转化过程,成功制备了具有核壳结构的 ZnO/ZnS 纳米线阵列,用作染料敏化太阳能电池(DSSC)的光阳极。通过改变化学转化过程中的反应时间,系统地研究了 ZnS 在 ZnO 纳米线上的形态演变及其对 DSSC 性能的影响。结果表明,致密的 ZnS 壳可以有效地促进从激发染料分子到 ZnO 导带的光生电子转移,同时抑制从染料和氧化还原电解质注入的电子的复合。随着反应时间的延长,由于新形成的 ZnS 纳米颗粒,纳米线的表面变得粗糙,这将增强染料的负载,从而增加短路电流密度(J(SC))。开路光电压衰减测量也表明,由于 ZnS 涂层后 ZnO 表面陷阱密度降低,ZnO/ZnS 核壳纳米结构中的电子寿命(τ(n))可以显著延长。对于 ZnO/ZnS 核壳纳米结构,经过 6 小时的转化时间,J(SC)和η 可以达到 8.38 mA/cm(2)和 1.92%,分别是原始 ZnO 的 12 倍和 16 倍。