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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Hierarchical ZnO Nanowire-Nanosheet Architectures for High Power Conversion Efficiency in Dye-Sensitized Solar Cells
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Hierarchical ZnO Nanowire-Nanosheet Architectures for High Power Conversion Efficiency in Dye-Sensitized Solar Cells

机译:染料敏化太阳能电池中高功率转换效率的分层ZnO纳米线-纳米片结构

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摘要

We present a two-step synthesis process to produce hierarchical ZnO nanoarchitectures that involves the preparation of ZnO nanosheet arrays by the pyrolysis of the precursor Zn5(OH)8Cl2 electrodeposited on conductive glass substrates, followed by the aqueous chemical growth (ACG) of dense ZnO single-crystalline nanowires on the surfaces of the primary ZnO nanosheets. The dye-sensitized solar cell (DSSC) based on the hierarchical ZnO nanowire-nanosheet architectures showed a power conversion efficiency of 4.8%, which is nearly twice as high as that of the DSSC constructed using a photoanode of bare ZnO nanosheet arrays. The better photovoltaic performance of hierarchical ZnO nanoarchitecture DSSC was due to a better dye loading and light harvesting as a consequence of the enlargement of the internal surface area within the photoanode. Moreover, the improved performance for the DSSC with the hierarchical ZnO nanowire-nanosheet architectures may be also ascribed to more light scattering behavior through extending the optical path length within the photoanode so as to increase the light harvesting. The results demonstrate potential application of the hierarchical ZnO nanoarchitectures derived from ZnO nanosheet arrays for highly efficient DSSCs.
机译:我们提出了一种两步合成方法,以生产分层的ZnO纳米结构,该方法涉及通过电沉积在导电玻璃基板上的前驱体Zn5(OH)8Cl2的热解制备ZnO纳米片阵列,然后进行致密ZnO的水性化学生长(ACG)初级ZnO纳米片表面上的单晶纳米线。基于分层ZnO纳米线-纳米片结构的染料敏化太阳能电池(DSSC)的功率转换效率为4.8%,几乎是使用裸露ZnO纳米片阵列的光阳极构建的DSSC的两倍。分层ZnO纳米结构DSSC的更好的光伏性能是由于更好的染料负载和光阳极内部表面表面积的扩大导致的光收集。而且,具有分层ZnO纳米线-纳米片结构的DSSC的改进性能还可以归因于通过延长光阳极内的光路长度从而增加光收集而产生的更多光散射行为。结果表明,源自ZnO纳米片阵列的分层ZnO纳米结构对于高效DSSC的潜在应用。

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