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3D Branched ZnO Nanowire Arrays Decorated with Plasmonic Au Nanoparticles for High-Performance Photoelectrochemical Water Splitting

机译:等离子Au纳米粒子修饰的3D分支ZnO纳米线阵列,用于高性能光电化学水分解

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Plasmonic photoelectrochemical (PEC) water splitting is very promising in the conversion of abundant solar energy into chemical energy. However, the solar-to-hydrogen efficiencies reported so far are still too low for practical use, which can be improved by optimizing the design and synthesis of individual blocks (i. e., the compositions, sizes, shapes of the metal and the coupling semiconductors) and the assembly of these blocks into targeted three-dimensional (3D) structures. Here, we constructed a composite plasmonic metal/semiconductor photoanode by decorating gold nanoparticles (Au NPs) on 3D branched ZnO nanowire arrays (B-ZnO NWs) through a series of simple solution chemical routes. The 3D ordered Au/B-ZnO NWs photoanodes exhibited excellent PEC activities in both ultraviolet and visible region. The improved photoactivities in visible region were demonstrated to be caused by the surface-plasmon-resonance effect of Au NPs. The photoconversion efficiency of Au/B-ZnO NWs photoanode reached 0.52% under simulated sunlight illumination. This is a high value of solar-to-hydrogen efficiencies reported till nowadays for plasmonic PEC water splitting, which was mainly benefit from the extensive metal/ semiconductor interfaces for efficient extraction of hot electron from Au NPs and excellent charge-carries collection efficiency of the 3D ordered Au/B-ZnO NWs photoelectrode.
机译:在将大量太阳能转化为化学能方面,等离子光电化学(PEC)水分解技术非常有前途。但是,到目前为止报道的太阳能到氢的效率仍然太低,无法实际使用,可以通过优化单个块的设计和合成(即金属和耦合半导体的组成,尺寸,形状)来提高它的效率。并将这些块组装成目标三维(3D)结构。在这里,我们通过一系列简单的溶液化学方法,通过在3D分支ZnO纳米线阵列(B-ZnO NWs)上装饰金纳米颗粒(Au NPs),构建了复合等离子体金属/半导体光电阳极。 3D有序的Au / B-ZnO NWs阳极在紫外和可见光区域均表现出优异的PEC活性。可见光区活性的提高是由金纳米粒子的表面等离子体共振效应引起的。在模拟的阳光照射下,Au / B-ZnO NWs光电阳极的光转换效率达到0.52%。这是迄今为止报道的等离激元PEC水分解的太阳能转化效率的高值,这主要得益于广泛的金属/半导体界面,可从Au NPs中高效提取热电子,并具有极好的电荷载流子收集效率。 3D有序Au / B-ZnO NWs光电电极。

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