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ZnO/Cu_2O-decorated rGO: Heterojunction photoelectrode with improved solar water splitting performance

机译:ZnO / Cu_2O装饰的rGO:具有改进的太阳能水分解性能的异质结光电极

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In present work, we report a facile fabrication process to improve the photoelectrochemical (PEC) performance of ZnO-based photoelectrodes. In order to achieve that, the Cu2O nanocubes are cathodic-deposited on the as-prepared ZnO nanorods. Then rGO nano sheets are electrodeposited on the ZnO/Cu2O heterostructures. The fabricated photo electrodes are systematically studied in detail by different characterization techniques such as powder X-ray diffraction, micro-Raman, X-ray photoelectron spectroscopy, ultraviolet diffused reflectance spectroscopy and photoluminescence spectroscopy analysis. Morphologies of the fabricated photoelectrodes are investigated through electron microscopy in scanning and transmission mode. To evaluate the PEC performance of the fabricated photoelectrodes, the line scan voltammetry (LSV) measurement is performed using a three-electrode system in 0.5-M Na2SO4 electrolyte solution under stimulated light illumination at 100 mW/cm(2) from a 300-W Xenon Arc lamp coupled with an AM 1.5G filter using a three-electrode system. The photocurrent measurement demonstrates that the photoelectrodes based on ZnO/Cu-2/rGO possess enhanced PEC performance compared to the pristine ZnO and ZnO/Cu2O photoelectrodes. The photocurrent density of ZnO/Cu2O/rGO-15 photoelectrode (10.11 mA/cm(2)) is similar to 9 and similar to 3 times higher than the photoelectrodes based on pristine ZnO (1.06 mA/cm(2)) and ZnO/Cu2O (3.22 mA/cm(2)). The enhanced PEC performance of ZnO/Cu2O/rGO photoelectrode is attributed to the excellent light absorption properties of Cu2O and excellent catalytic and charge transport properties of rGO. Experimental results reveal that the proposed functional nanomaterials have a great potential in water splitting applications. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在目前的工作中,我们报告了一种易于制造的工艺,以改善基于ZnO的光电极的光电化学(PEC)性能。为了实现这一点,将Cu2O纳米立方体阴极沉积在所制备的ZnO纳米棒上。然后将rGO纳米片电沉积在ZnO / Cu2O异质结构上。通过不同的表征技术,如粉末X射线衍射,显微拉曼光谱,X射线光电子能谱,紫外扩散反射光谱和光致发光光谱分析,对制成的光电极进行了详细的系统研究。通过电子显微镜以扫描和透射模式研究所制造的光电极的形态。为了评估所制造光电电极的PEC性能,使用三电极系统在0.5M Na2SO4电解质溶液中,在300mW的100mW / cm(2)的激发光照射下,进行线扫描伏安法(LSV)测量氙弧灯与使用三电极系统的AM 1.5G滤光片耦合。光电流测量表明,与原始ZnO和ZnO / Cu2O光电电极相比,基于ZnO / Cu-2 / rGO的光电电极具有增强的PEC性能。 ZnO / Cu2O / rGO-15光电极的光电流密度(10.11 mA / cm(2))与基于纯ZnO(1.06 mA / cm(2))和ZnO / Cu 2 O(3.22 mA / cm(2))。 ZnO / Cu2O / rGO光电极的增强的PEC性能归因于Cu2O的出色光吸收性能以及rGO的出色的催化和电荷传输性能。实验结果表明,所提出的功能纳米材料在水分解应用中具有很大的潜力。 (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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