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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Efficient promotion of charge separation with reduced graphene oxide (rGO) in BiVO4/rGO photoanode for greatly enhanced photoelectrochemical water splitting
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Efficient promotion of charge separation with reduced graphene oxide (rGO) in BiVO4/rGO photoanode for greatly enhanced photoelectrochemical water splitting

机译:高效促进Bivo4 / Rgo PhotoNode中的石墨烯氧化物(RGO)的电荷分离,以极大地增强光电化学水分裂

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摘要

Although BiVO4 (BVO) continues to attract strong attention as an ideal reactive semiconductor, its photoelectrochemical (PEC) water splitting performance remains low because most of the charge carriers are easily recombined in the bulk or on the surface of the photoanode before reaching the fluorine-doped tin dioxide (FTO). This study presents a facile and simple, visible-light-assisted, photocatalytic reduction of graphene oxide (GO) by using BVO for the preparation of highly stable BVO/reduced GO (rGO) nanocomposites with two different rGO weight ratios (5% and 10%). These as-prepared BVO/rGO nanocomposites were then drop-cast on an FTO substrate to demonstrate the key role played by the rGO in greatly improving the electron transport in the BVO/rGO films. In PEC water splitting experiments, the BVO/rGO-10% photoelectrode showed the highest photo current density (554.4 mu A cm(-2) at 1.2 V vs. Ag/AgC1), compared to BVO (111.7 mu A cm(-2)) and BVO/rGO-5% (377.9 mu A cm(-2)). The stable BVO/rGO also showed the highest charge carrier density, with an extended lifetime and improved the electrical conductivity, as compared to BVO. These results contributed to the excellent PEC performance of the BVO/rGO photoanode. Under simulated solar light illumination, the open-circuit potential (OCP) of the BVO/rGO films was shifted to a more negative value due to the enhanced electron-hole separation in the films. The photocurrent yields of the BVO and BVO/rGO electrodes were dependent on the solution pH. The photocurrent densities were higher over the full range of measured potential (0 to + 1.2 V vs. Ag/AgCl) in the NaOH electrolyte (1 M, pH = 13.5) than in the Na2SO4 electrolyte (0.1 M, pH = 6.5). This work demonstrates the essential role of the rGO coverage in the great enhancement of electron transport through the rGO in the BVO/rGO film.
机译:虽然Bivo4(BVO)继续引起强烈的关注作为理想的反应半导体,但其光电化学(PEC)水分裂性能保持低,因为大多数电荷载体在到达氟之前容易重新组合或在光电码的表面上。掺杂的二氧化锡(FTO)。本研究介绍了通过使用BVO制备高度稳定的BVO /减少(RGO)纳米复合材料的Brope氧化物(GO)的易于和简单,可见光的光催化减少的光催化还原,具有两种不同的RGO重量比(5%和10 %)。然后将这些作为制备的BVO / Rgo纳米复合材料在FTO基板上滴下来展示RGO在大大改善BVO / RGO膜中的电子传输中发挥的关键作用。在PEC水分裂实验中,与BVO(111.7μmC厘米(-2 ))和BVO / RGO-5%(377.9μm(-2))。与BVO相比,稳定的BVO / RGO也显示出最高电荷载体密度,延长寿命并改善电导率。这些结果有助于BVO / RGO PhotoNode的优异PEC性能。在模拟的太阳光照照射下,由于薄膜中的增强的电子空穴分离,BVO / Rgo膜的开路电位(OCP)被移位到更负值。 BVO和BVO / RGO电极的光电流产生依赖于溶液pH。在NaOH电解质(1M,pH = 13.5)中,光电流密度在NaOH电解质(1m,pH = 13.5)中的全部测量电位(0至+ 1.2V与Ag / AgCl)高于Na 2 SO 4电解质(0.1M,pH = 6.5)。这项工作展示了RGO覆盖在通过BVO / RGO膜中的RGO巨大增强电子传输的大大提高的基本作用。

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