首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Identifying dual functions of rGO in a BiVO4/rGO/NiFe-layered double hydroxide photoanode for efficient photoelectrochemical water splitting
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Identifying dual functions of rGO in a BiVO4/rGO/NiFe-layered double hydroxide photoanode for efficient photoelectrochemical water splitting

机译:在Bivo4 / Rgo / NiFe层双氢氧化物光电仪中识别RGO的双功能,用于高效光电化学水分子

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摘要

Bismuth vanadate (BiVO4) is a promising material for photoelectrochemical (PEC) water oxidation. However, the sluggish water oxidation kinetics, poor electron transport properties and severe charge recombination limit its performance. Here, a new type of triadic photoanode is developed by rationally designing the electrode structure. The NiFe-layered double hydroxide (NiFe-LDH) serves as a water oxidation catalyst (WOC) to accelerate the transportation of the photo-generated holes from the BiVO(4)photoelectrode to the electrolyte for improving the water oxidation reaction, while the reduced graphene oxide (rGO) nanosheets serve as an efficient electron shuttling mediator for suppressing the electron-hole recombination at the BiVO4/NiFe-LDH interfaces. On the other hand, rGO can positively shift the electrodeposion potential of NiFe-LDH (-0.1 Vvs.RHE) which can greatly protect the BiVO(4)electrode, since a more negative potential would reduce its PEC activity. This electrode exhibits a significantly higher photocurrent density than those of its pristine BiVO4, BiVO4/rGO, and BiVO4/NiFe-LDH counterparts, producing a photocurrent density of 3.26 mA cm(-2)at 1.23 Vvs.RHE under AM 1.5 G illumination and showing excellent stability. The improved PEC performance is attributed to the accelerated charge separation/transfer between the photoanode/electrolyte interfaces and surface water oxidation reaction due to the synergistic effect of rGO and NiFe-LDH.
机译:钒酸盐(Bivo4)是用于光电化学(PEC)水氧化的有希望的材料。然而,缓慢的水氧化动力学,电子传输性能差和严重的电荷重组限制其性能。在这里,通过合理设计电极结构来开发了一种新型的三合一光电极。 NiFe层双氢氧化物(NiFe-LDH)用作水氧化催化剂(WOC),以加速从体上(4)光电极到电解质的光产生孔的输送,以改善水氧化反应,而降低石墨烯氧化物(RGO)纳米片用作有效的电子穿梭介质,用于抑制Bivo4 / NiFe-LDH界面处的电子空穴重组。另一方面,RGO可以积极地改变NiFe-LDH(-0.1VVS.RHE)的电沉积电位,其可以大大保护BIVO(4)电极,因为更负势会降低其PEC活性。该电极表现出比其原始Bivo4,Bivo4 / Rgo和Bivo4 / NiFe-LDH对应物显着更高的光电流密度,在1.5g照明下,在1.23VVs.RHE下产生3.26 mA cm(-2)的光电流密度。呈现出色的稳定性。由于RGO和NiFe-LDH的协同作用,改善的PEC性能归因于光电码/电解质界面和表面水氧化反应之间的加速电荷分离/转移。

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    Shanghai Univ Sch Environm &

    Chem Engn 333 Nanchen Rd Shanghai 200444 Peoples R China;

    Univ Queensland Sch Chem Engn Nanomat Ctr Australian Inst Bioengn &

    Nanotechnol Brisbane Qld 4072 Australia;

    Shanghai Univ Sch Environm &

    Chem Engn 333 Nanchen Rd Shanghai 200444 Peoples R China;

    Shanghai Univ Dept Polymer Mat Coll Mat Sci &

    Engn 333 Nanchen Rd Shanghai 200444 Peoples R China;

    Shanghai Univ Sch Environm &

    Chem Engn 333 Nanchen Rd Shanghai 200444 Peoples R China;

    Univ Queensland Sch Chem Engn Nanomat Ctr Australian Inst Bioengn &

    Nanotechnol Brisbane Qld 4072 Australia;

    Univ Queensland Sch Chem Engn Nanomat Ctr Australian Inst Bioengn &

    Nanotechnol Brisbane Qld 4072 Australia;

    Shanghai Univ Sch Environm &

    Chem Engn 333 Nanchen Rd Shanghai 200444 Peoples R China;

    Univ Queensland Sch Chem Engn Nanomat Ctr Australian Inst Bioengn &

    Nanotechnol Brisbane Qld 4072 Australia;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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