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Mo-doped BiVO4@reduced graphene oxide composite as an efficient photoanode for photoelectrochemical water splitting

机译:Mo-掺杂的Bivo4 @ X-氧化石墨烯氧化物复合材料作为光电化学水分裂的有效光电码

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摘要

Monoclinic Bismuth vanadate (BiVO4) nanomaterial is an attractive, efficient photoanode for photoelectrochemical (PEC) water splitting due to excellent visible light activity and good photo-chemical stability. However, poor charge separation and low charge carrier mobility hinder the improvement of PEC performance of BiVO4. In this work, molybdenum (Mo)-doped BiVO4@reduced graphene oxide (rGO) nanocomposites are fabricated and their potential to serve as photoanodes for PEC water splitting is evaluated. This composite, by the introduction of Mo-dopant and rGO in BiVO4 enhances the PEC performance for water oxidation for they assist in reducing charge recombination and enhancement of photocurrent. As a result, the Mo-BiVO4@rGO composite photoanode exhibited a photocurrent density of 8.51 mA cm(-2) at 1.23 V versus reversible hydrogen electrode (RHE), which is two and four times greater than that of Mo-BiVO4 (5.3 mA cm(-2) at 1.23 V versus RHE) and pristine BiVO4 (2.01 mA cm(-2) at 1.23 V versus RHE) photoactive electrodes. In addition, good photoconversion efficiency, low charge transfer resistance and good external quantum efficiency (EQE) are achieved for this ternary nanocomposite. These studies reveal the improved PEC activity for water splitting by the Modoped BiVO4@rGO, and indicated that this approach can be used to design more efficient photoanodes for PEC water splitting.
机译:单斜铝铋钒酸盐(BIVO4)纳米材料是一种吸引力,有效的光电磁极,用于光电化学(PEC)水分裂,由于优异的可见光活性和良好的光学化学稳定性。然而,电荷分离差和低电荷载流动性妨碍了BIVO4的PEC性能的提高。在这项工作中,制造钼(Mo) - 掺杂的Bivo4 @ Dreame的石墨烯(RGO)纳米复合材料,并评估其用作PEC水分裂的光阳极的电位。通过在Bivo4中引入Mo掺杂剂和RGO的这种复合材料增强了用于水氧化的PEC性能,以帮助减少电荷重组和增强光电流。结果,Mo-Bivo4 @ rgo复合光膜在1.23V的光电流密度为8.51 mA cm(-2),而可逆氢电极(rHE),这是Mo-Bivo4的两倍和四倍(5.3 MA cm(-2)在1.23 V与rhe)和原始Bivo4(2.01 mA cm(-2),位于1.23 V与RHE)光活性电极。另外,对于该三元纳米复合材料,实现了良好的光电转换效率,低电荷转移电阻和良好的外部量子效率(EQE)。这些研究揭示了由调制的Bivo4 @ Rgo水分裂的改善的PEC活性,并表明这种方法可用于为PEC水分裂设计更有效的光阳极。

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