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首页> 外文期刊>International journal of hydrogen energy >Facile fabrication and optimization of bowl-like ZnO/CdS nano-composite thin films with hierarchical nanopores and nano-cracks for high-performance photoelectrochemistry
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Facile fabrication and optimization of bowl-like ZnO/CdS nano-composite thin films with hierarchical nanopores and nano-cracks for high-performance photoelectrochemistry

机译:方便地制备和优化具有分级纳米孔和纳米裂纹的碗状ZnO / CdS纳米复合薄膜,以用于高性能光电化学

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摘要

A special nano-structured composite ZnO/CdS thin film with hierarchical nanopores and nano-cracks has been synthesized by a facile two-step method for the first time, in which both loadings of ZnO and CdS are optimized. We first fabricated the hierarchical nano-porous ZnO thin film through rapid gas/liquid interface assembly and layer-by-layer transfers of bowl-like ZnO nanoparticles for thirteen times. The ZnO nanobowls are prepared by a simple solution chemical reaction without using any templates. After annealing, the assembled ZnO film is sensitized with CdS nanoparticles by successive ionic layer adsorption and reactions for six cycles. Nano-cracks form for the ZnO/CdS nano-composite film by calcination, which is due to the different thermal expansion behavior between the ZnO film and the CdS layer. The facilely optimized ZnO/CdS films can serve as a promising photoanode in a photoelectrochemical cell, and it can generate a saturated photocurrent density as high as 7.8 mA cm(-2) at -0.9 V (vs. Hg vertical bar Hg2SO4 vertical bar saturated K2SO4) under visible light illumination of 100 mW cm(-2) in an aqueous solution of 0.5 M Na2S, corresponding to a solar-to-electricity conversion efficiency of 6.6%. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:首次通过一种简便的两步法合成了具有分级纳米孔和纳米裂纹的特殊纳米结构复合ZnO / CdS薄膜,其中ZnO和CdS的负载均得到优化。我们首先通过快速的气/液界面组装和碗状ZnO纳米颗粒的逐层转移十三次来制造分层的纳米多孔ZnO薄膜。 ZnO纳米杯是通过简单的溶液化学反应制备的,无需使用任何模板。退火后,通过连续的离子层吸附和反应六个循环,用CdS纳米粒子对组装好的ZnO薄膜进行敏化。 ZnO / CdS纳米复合膜通过煅烧形成纳米裂纹,这是由于ZnO膜与CdS层之间的热膨胀行为不同。易于优化的ZnO / CdS膜可以用作光电化学电池中的有希望的光阳极,并且它可以在-0.9 V(vs。Hg垂直条Hg2SO4垂直条饱和)下产生高达7.8 mA cm(-2)的饱和光电流密度。 K2SO4)在0.5 M Na2S水溶液中的100 mW cm(-2)的可见光照射下,对应的太阳能转化率为6.6%。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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