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Influence of the annealing atmosphere on the performance of ZnO nanowire dye-sensitized solar cells

机译:退火气氛对ZnO纳米线染料敏化太阳能电池性能的影响

摘要

Postsynthesis thermal treatments are key to promote crystallinity and reduce the defect density in solution-processed nanomaterials. In particular, the annealing atmosphere strongly influences the functional properties of ZnO nanowires (NWs) and specifically their performance as photoanodes in dye-sensitized solar cells (DSCs). We prepared vertically aligned ZnO NWs by a low-cost, high-yield, and up-scalable hydrothermal method and studied the effect of the postannealing atmosphere on their optoelectronic properties and on their performance as electrodes in DSCs. When annealing ZnO NWs under argon, instead of air, significantly higher photoluminescence (PL) UV emission and relatively lower defects-related visible PL emission were obtained. At the same time, Ar-annealing rendered ZnO NWs with higher electrical conductivities, as observed from single NW measurements using conductive-atomic force microscopy. Furthermore, DSCs based on ZnO NWs annealed in argon were characterized by 50% higher photocurrents than those obtained from air-annealed ZnO. As a result 30% efficiency increases were systematically obtained when using argon as the annealing atmosphere. These results are discussed within the framework of a multiple trapping model for transport and charge transfer, taking into account differences in the defect concentration introduced during the annealing. © 2013 American Chemical Society.
机译:合成后热处理对于提高溶液加工的纳米材料的结晶度并降低缺陷密度至关重要。特别地,退火气氛强烈影响ZnO纳米线(NWs)的功能特性,特别是它们在染料敏化太阳能电池(DSC)中作为光阳极的性能。我们通过低成本,高产量和可扩展的水热方法制备了垂直排列的ZnO NW,并研究了后退火气氛对其光电性能及其在DSC中作为电极的性能的影响。当在氩气而不是空气下对ZnO NW进行退火时,可以获得更高的光致发光(PL)UV发射和相对较低的缺陷相关的可见光PL发射。同时,如使用导电原子力显微镜从单个NW测量中所观察到的,Ar退火使ZnO NW具有更高的电导率。此外,基于在氩气中退火的ZnO NW的DSC具有比从空气退火ZnO获得的光电流高50%的特征。结果,当使用氩气作为退火气氛时,系统地获得了30%的效率提高。考虑到退火过程中引入的缺陷浓度的差异,在用于传输和电荷转移的多重俘获模型的框架内讨论了这些结果。 ©2013美国化学学会。

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