首页> 外文期刊>Microporous and mesoporous materials: The offical journal of the International Zeolite Association >Direct conversion of two-dimensional ZIF-L film to porous ZnO nano-sheet film and its performance as photoanode in dye-sensitized solar cell
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Direct conversion of two-dimensional ZIF-L film to porous ZnO nano-sheet film and its performance as photoanode in dye-sensitized solar cell

机译:二维ZIF-L膜直接转化为多孔ZnO纳米片膜及其在染料敏化太阳能电池中的光阳极性能

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摘要

A zeolitic imidazolate framework-L (ZIF-L) film with a leaf-like morphology was successfully fabricated on FTO substrate in aqueous solution at room temperature on a large-scale. This ZIF-L film with a thickness of ~4 um was composed of highly uniform nanosheets of 100-150 nm in thickness, which stood nearly perpendicularly on the substrate. A porous ZnO nanosheet film was subsequently obtained by simply calcining the ZIF-L film at 550 °C for 0.5 h. The resulting ZnO nanosheets presented a curved petal-like morphology, which was composed of interconnected nanoparticles. The ZnO film with a thickness of only about 4 nm showed highly crystalline and well-defined porous features. An overall light conversion efficiency of 2.52% was achieved by using this thin porous ZnO nanosheet film as a photoanode in dye-sensitized solar cell (DSSC), significantly better than that derived from the film of ZnO nanorods with similar thickness (1.27%). The superior performance of the DSSC with porous ZnO nanosheet is attributed to the following: (1) the high surface area leads to a higher dye loading; (2) the nanopores enable more efficient electrolyte diffusion and rapid adsorption of the dye, thereby reducing the chances of formation of Zn~(2+)/dye aggregates; and (3) increased light-harvesting efficiency.
机译:在室温下在水溶液中的FTO基板上成功大规模制备了具有叶状形态的沸石型咪唑酸酯骨架L(ZIF-L)膜。厚度约为4微米的ZIF-L薄膜由厚度几乎为100-150 nm的高度均匀的纳米片组成,它们几乎垂直地垂直放置在基板上。随后通过简单地在550°C下煅烧ZIF-L膜0.5 h获得了多孔ZnO纳米片膜。所得的ZnO纳米片呈现出弯曲的花瓣状形态,由相互连接的纳米粒子组成。厚度仅为约4 nm的ZnO膜显示出高度结晶且轮廓分明的多孔特征。通过使用这种薄的多孔ZnO纳米片薄膜作为染料敏化太阳能电池(DSSC)中的光阳极,可实现2.52%的总光转换效率,明显好于具有相似厚度(1.27%)的ZnO纳米棒薄膜。具有多孔ZnO纳米片的DSSC的优异性能归因于以下方面:(1)高表面积导致较高的染料负载量; (2)纳米孔能使电解质更有效地扩散,并使染料快速吸附,从而减少形成Zn〜(2 +)/染料聚集体的机会。 (3)提高光收集效率。

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