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An In-Situ Reaction Route to Molecular Level Dispersed Bisimide and ZnO Nanorod Hybrids with Efficient Photo-Induced Charge Transfer

机译:分子水平分散的双酰亚胺和ZnO纳米棒杂种的原位反应途径,具有有效的光诱导电荷转移

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摘要

Abstract As an important photoconductive hybrid material, perylene/ZnO has attracted tremendous attention for photovoltaic-related applications, but generally faces a great challenge to design molecular level dispersed perylenes/ZnO nanohybrids due to easy phase separation between perylenes and ZnO nanocrystals. In this work, we reported an in-situ reaction method to prepare molecular level dispersed H-aggregates of perylene bisimide/ZnO nanorod hybrids. Surface photovoltage and electric field-induced surface photovoltage spectrum show that the photovoltage intensities of nanorod hybrids increased dramatically for 100 times compared with that of pristine perylene bisimide. The enhancement of photovoltage intensities resulting from two aspects: (1) the photo-generated electrons transfer from perylene bisimide to ZnO nanorod due to the electric field formed on the interface of perylene bisimide/ZnO; (2) the H-aggregates of perylene bisimide in ZnO nanorod composites, which is beneficial for photo-generated charge separation and transportation. The introduction of ordered self-assembly thiol-functionalized perylene-3,4,9,10-tetracarboxylic diimide (T-PTCDI)/ ZnO nanorod composites induces a significant improvement in incident photo-to-electron conversion efficiency. This work provides a novel mentality to boost photo-induced charge transfer efficiency, which brings new inspiration for the preparation of the highly efficient solar cell.
机译:摘要作为一个重要的光导混合材料,Perylene / ZnO吸引了对光伏相关的应用的巨大关注,但通常面临着设计分子水平分散的吡咯/ ZnO纳米油状物的巨大挑战,因为在吡咯和ZnO纳米晶体之间易于相分离。在这项工作中,我们报道了一种原位反应方法,用于制备鲍氏双酰胺/ ZnO纳米孔杂交种的分子水平分散的H-聚集体。表面光电电压和电场诱导的表面光电谱表明,与原始泛酰胺双酰胺相比,纳米槽杂种的光电强度急剧增加了100次。由两个方面产生的光伏强度的增强:(1)由于在Pernene Bisimide / ZnO的界面上形成的电场,从Perylene Bisimide转移到ZnO Nanorod; (2)ZnO纳米棒复合材料中Pernerne Bisimide的H-聚集体,这对于照片产生的电荷分离和运输有益。有序自组装硫醇官能化的Perylene-3,4,9,10-四羧酸二酰亚胺(T-PTCDI)/ ZnO纳米棒复合材料的引入诱导入射光对电子转换效率的显着改善。这项工作提供了一种新的心态来提高照片诱导的电荷转移效率,这为高效的太阳能电池制备提供了新的灵感。

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