首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Surface plasmon-driven photoelectrochemical water splitting of aligned ZnO nanorod arrays decorated with loading-controllable Au nanoparticles
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Surface plasmon-driven photoelectrochemical water splitting of aligned ZnO nanorod arrays decorated with loading-controllable Au nanoparticles

机译:表面等离子体驱动的光电化学水分配对齐的ZnO纳米座阵列,装饰着负载可控的Au纳米粒子

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摘要

In this paper, we designed a series of well-aligned ZnO nanorod arrays decorated with loading-controllable Au nanoparticles and studied their surface plasmon-driven photoelectrochemical (PEC) water splitting performances. The PEC water splitting ability of Au-ZnO nanorod arrays was evaluated under illumination with lambda 420 nm light. These nanorod arrays show remarkable PEC water splitting performances and achieve the highest photocurrent density of 30 mu A cm(-2) at 0.8 V versus Ag/AgCl. Furthermore, the PEC performance for heterogenous nanorod arrays can be effectively adjusted by controlling loading amounts of Au nanoparticles. We experimentally demonstrate that the Au-ZnO nanorod arrays show enhanced visible light absorption ability. The superior PEC performance of Au-ZnO nanorod arrays is attributed to the synergistic effects of plasmonic Au nanoparticles, ZnO semiconductor and Schottky barrier built in heterogenous nanorod array. This work provides a facile strategy to manipulate the PEC water splitting activity of Au-ZnO hybrid nanostructures by simply controlling the loading amounts of metallic Au nanoparticles. Furthermore, our research offers a potentially efficient strategy for the design and fabrication of new types of plasmonic-metal/semiconductor hybrid nanostructures with a plasmonic-enhanced PEC water splitting activity under the visible light, which are as valuable photocatalysts for solar-to-chemical/electrical energy conversion.
机译:在本文中,我们设计了一系列良好的对齐ZnO纳米座阵列,装饰着可负载可控的Au纳米粒子,并研究了它们的表面等离子体驱动的光电化学(PEC)水分裂性能。在用λ&gt的照明中评估了Au-ZnO Nanorod阵列的PEC水分解能力。 420 nm灯。这些纳米棒阵列显示出显着的PEC水分解性能,并在0.8V与Ag / AgCl下实现30μm(-2)的最高光电流密度。此外,通过控制Au纳米颗粒的负载量,可以有效地调节对异源纳米棒阵列的PEC性能。我们通过实验证明AU-ZnO纳米座阵列显示出增强的可见光吸收能力。 Au-ZnO Nanorod阵列的卓越PEC性能归因于等离子体Au纳米粒子,ZnO半导体和肖特基屏障的协同作用,内置于异源纳米棒阵列。该工作通过简单地控制金属Au纳米颗粒的装载量来制造Au-ZnO混合纳米结构的PEC水分裂活性的容易策略。此外,我们的研究提供了具有在可见光下具有等离子体增强的PEC水分解活性的新型等级 - 金属/半导体混合纳米结构的设计和制造潜在有效的策略。 /电能转换。

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