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Enhanced photoelectrochemical water-splitting effect with a bent ZnO nanorod photoanode decorated with Ag nanoparticles

机译:Ag纳米粒子修饰的ZnO纳米棒弯曲阳极增强光电化学水分解作用

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摘要

Zinc oxide (ZnO) nanorods coated with silver (Ag) film on a polyethylene terephthalate (PET) flexible substrate were used as the photoanode for water splitting. The hybrid nanostructures were prepared via low-temperature hydrothermal growth and electron beam evaporation. The effects of plasmonic enhanced absorption, surface recombination inhibition and improved charge transport are investigated by varying the Ag thickness. Light trapping and absorption enhancement are further studied by optimizing the curvature of the PET substrates. The maximum short circuit current density (J _(SC), 0.616mAcm ~2) and the photoelectron conversion efficiency (PCE, 0.81%) are achieved with an optimized Ag film thickness of 10nm and substrate bending radius of 6.0mm. The maximum J _(SC) and PCE are seven times and ten times, respectively, higher than those of the bare ZnO nanorods on flexible substrates without bending. The overall PEC performance improvement is attributed to the plasmonic effects induced by Ag film and improved charge transport due to inhibition of ZnO surface charge recombination. Enhanced light trapping (harvesting) induced by bending the PET substrates further improved the overall efficiency.
机译:在聚对苯二甲酸乙二酯(PET)柔性基板上涂有银(Ag)膜的氧化锌(ZnO)纳米棒用作水分解的光阳极。通过低温水热生长和电子束蒸发制备了杂化纳米结构。通过改变银的厚度,研究了等离子体增强吸收,表面重组抑制和改善的电荷传输的影响。通过优化PET基板的曲率进一步研究了光捕获和吸收增强。通过优化的Ag膜厚度为10nm,基板弯曲半径为6.0mm,可以实现最大短路电流密度(J _(SC),0.616mAcm〜2)和光电子转换效率(PCE,0.81%)。最大J_(SC)和PCE分别是柔性基板上未弯曲的裸露ZnO纳米棒的7倍和10倍。 PEC整体性能的提高归因于由Ag膜引起的等离子体效应和由于抑制ZnO表面电荷复合而改善的电荷传输。通过弯曲PET基板引起的增强的光捕获(收集)功能进一步提高了整体效率。

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