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One-Pot in Situ Hydrothermal Growth of BiVO4/Ag/rGO Hybrid Architectures for Solar Water Splitting and Environmental Remediation

机译:BiVO4 / Ag / rGO混合体系的一锅法原位水热生长用于太阳能水分解和环境修复

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摘要

BiVO4 is ubiquitously known for its potential use as photoanode for PEC-WS due to its well-suited band structure; nevertheless, it suffers from the major drawback of a slow electron hole separation and transportation. We have demonstrated the one-pot synthesis of BiVO4/Ag/rGO hybrid photoanodes on a fluorine-doped tin oxide (FTO)-coated glass substrate using a facile and cost-effective hydrothermal method. The structural, morphological, and optical properties were extensively examined, confirming the formation of hybrid heterostructures. Ternary BiVO4/Ag/rGO hybrid photoanode electrode showed enhanced PEC performance with photocurrent densities (J ph) of ~2.25 and 5 mA/cm2 for the water and sulfate oxidation, respectively. In addition, the BiVO4/Ag/rGO hybrid photoanode can convert up to 3.5% of the illuminating light into photocurrent, and exhibits a 0.9% solar-to-hydrogen conversion efficiency. Similarly, the photocatalytic methylene blue (MB) degradation afforded the highest degradation rate constant value (k = 1.03 × 10−2 min−1) for the BiVO4/Ag/rGO hybrid sample. It is noteworthy that the PEC/photocatalytic performance of BiVO4/Ag/rGO hybrid architectures is markedly more significant than that of the pristine BiVO4 sample. The enhanced PEC/photocatalytic performance of the synthesized BiVO4/Ag/rGO hybrid sample can be attributed to the combined effects of strong visible light absorption, improved charge separation-transportation and excellent surface properties.
机译:众所周知,BiVO4具有良好的能带结构,因此有潜力用作PEC-WS的光电阳极。然而,它具有电子空穴分离和传输缓慢的主要缺点。我们已经证明了使用简便且经济高效的水热方法在掺氟氧化锡(FTO)涂层的玻璃基板上一锅法合成BiVO4 / Ag / rGO杂化光阳极。广泛检查了结构,形态和光学性质,证实了杂化异质结构的形成。三元BiVO4 / Ag / rGO杂化光阳极电极显示出增强的PEC性能,水和硫酸盐氧化的光电流密度(J ph)分别为〜2.25和5μmA/ cm 2 。此外,BiVO4 / Ag / rGO混合型光电阳极可将高达3.5%的照明光转换为光电流,并具有0.9%的太阳能转换效率。类似地,BiVO4 / Ag / rGO的光催化亚甲基蓝(MB)降解提供了最高的降解速率常数(k = 1.03×10 −2 min -1 )混合样本。值得注意的是,BiVO4 / Ag / rGO混合体系结构的PEC /光催化性能比原始BiVO4样品的PEC /光催化性能显着更高。合成的BiVO4 / Ag / rGO杂化样品增强的PEC /光催化性能可归因于强大的可见光吸收,改进的电荷分离传输和出色的表面性能的综合效果。

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