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Au-doped BiVO_4 nanostructure-based photoanode with enhanced photoelectrochemical solar water splitting and electrochemical energy storage ability

机译:基于BIVO_4纳米结构的光电磁极,具有增强的光电化学太阳能水分裂和电化学储能能力

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BiVO4 is an appropriate photoanode material for solar-powered photoelectrochemical (PEC) water splitting and electrochemical energy storage. However, it has a few drawbacks. Therefore, doping with noble metals is speculated to be a promising technique to overcome these. Moreover, the role of the doped noble metal in the improvement of the water oxidation kinetics and energy storage has not been studied adequately so far. In this study, we prepared Au-doped BiVO4 nanostructures using a simple template-free ultrasonication technique. The effect of Au doping on the optical properties and surface morphology of the BiVO4 nanostructures, and their performance as a photoanode for energy harvesting are explored comprehensively. The 5Au- BiVO4 photoelectrode displayed a considerable improvement (similar to 29 times) in the PEC photocurrent density compared to that of the pure BiVO4 photoanode. Electrochemical impedance spectroscopy studies confirmed that the dopant improved the charge carrier density and acted as an electron donor. Furthermore, it was confirmed that the photocurrent density at 1.23 V vs. the reversible hydrogen electrode increased after Au doping. The supercapacitor properties of the 5Au-BiVO4 electrode were studied by cyclic voltammetry. At a 10 mV s(-1) scan rate, the specific capacitance of the 5Au-BV electrode increased to similar to 2.1 times that of the pure electrode. The significantly improved PEC performance and supercapacitor properties of the 5Au-BiVO4 electrode are attributed to its higher conductivity, improved interfacial charge transfer at the surface of BiVO4, and the synergistic effect between the host and dopant.
机译:BIVO4是用于太阳能光电化学(PEC)水分裂和电化学储能的适当光电码材料。但是,它有一些缺点。因此,推测掺杂具有贵金属的掺杂,是一种克服这些的有希望的技术。此外,到目前为止,掺杂贵金属在改善水氧化动力学和能量储存中的作用尚未得到充分研究。在这项研究中,我们使用简单的无模板超声波技术制备Au-掺杂的Bivo4纳米结构。 Au掺杂对Bivo4纳米结构的光学性质和表面形态的影响及其作为能量收集光电码的性能。与纯BIVO4光电码相比,5AU-BIVO4光电极在PEC光电流密度中显示出相当大的改进(类似于29次)。电化学阻抗光谱研究证实,掺杂剂改善了电荷载体密度并用作电子给体。此外,确认在Au掺杂后,可逆氢电极的光电流密度增加。通过循环伏安法研究了5AU-BIVO4电极的超电容器性质。在10 MV S(-1)扫描速率下,5AU-BV电极的比电容增加到纯电极的2.1倍。 5AU-BIVO4电极的PEC性能和超级电容器性能显着提高,归因于其较高的导电性,改善了BIVO4表面的界面电荷转移,以及宿主和掺杂剂之间的协同效应。

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