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In situ growth of zinc oxide nanoribbons within the interstices of a zinc stannate nanoplates network on compacted woven metal wires and their enhanced solar energy application

机译:锌氧化锌纳米波动锌在压实织物线上的锌型纳米板网络中的氧化锌纳米中的生长及其增强的太阳能应用

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摘要

A novel hybrid film is designed and prepared by in situ growth of ZnO nanoribbons in the interstices of Zn2SnO4 nanoplates network on the compacted woven metal wires through a simple process. The ZnO nanoribbons present in the ZnO/Zn2SnO4 composite film can enhance light harvesting, accelerate electron transport and induce a negative shift in the flat-band potential. Benefiting from its advantageous structure and composition, the ZnO/Zn2SnO4 film can be applied in many fields. For the flexible dyesensitized solar cells (FDSSCs) employing optimized ZnO/Zn2SnO4 as a photoanode, the conversion efficiency reaches 2.41% corresponding to similar to 36.2% improvement relative to the Zn2SnO4 nanoplates-based FDSSCs. Moreover, ZnO/Zn2SnO4-based FDSSC shows relatively good mechanical stability and long-term stability, retaining 95.1% and 93.3% of its initial efficiency after ten consecutive bending tests and after 15 days under sunlight, respectively; Additionally, the immobilized ZnO/Zn2SnO4 on the metal wires exhibits 96.8% photocatalytic degradation efficiency against an organic dye under UV light, and the photocatalytic performance can be restored almost completely by a simple chemical treatment. More importantly, the in situ growth technique demonstrated in this work can be adopted to fabricate other composite oxides on flexible substrates with high curvature surfaces for additional practical applications in flexible devices. (C) 2018 Elsevier Ltd. All rights reserved.
机译:通过简单的工艺在Zn2SNO4纳米板网络上的ZnO纳米间隙中原位生长设计和制备新型混合膜。在ZnO纳米带存在于氧化锌/ Zn2SnO4复合膜能够增强光捕获,加速电子传输,并引起所述平带电位的负偏移。从其有利的结构和组合物中受益,ZnO / Zn2SNO4薄膜可以应用于许多领域。对于使用优化的ZnO / Zn2SNO4作为光电码的柔性脱敏太阳能电池(FDSSCs),转化效率达到2.41%,相对于基于Zn2SNO4纳米间纳米板的FDSSCs相对于类似的36.2%。此外,基于ZnO / Zn2SNO 4的FDSSSSSSSSSSSSC显示出相对良好的机械稳定性和长期稳定性,在连续十个弯曲试验和阳光下15天后保留95.1%和93.3%的初始效率;另外,金属线上的固定化的ZnO / Zn2SNO4在紫外线下对有机染料表现出96.8%的光催化降解效率,并且光催化性能可以通过简单的化学处理来恢复。更重要的是,可以采用在该工作中证明的原位生长技术在具有高曲率表面上的柔性基板上制造其他复合氧化物,用于柔性装置中的额外实际应用。 (c)2018年elestvier有限公司保留所有权利。

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