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Engineering the Dimensional Interface of BiVO4-2D Reduced Graphene Oxide (RGO) Nanocomposite for Enhanced Visible Light Photocatalytic Performance

机译:设计BiVO4-2D还原氧化石墨烯(RGO)纳米复合材料的尺寸界面以增强可见光的光催化性能

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摘要

Graphene as a two-dimensional (2D) nanoplatform is beneficial for assembling a 2D heterojunction photocatalytic system to promote electron transfer in semiconductor composites. Here a BiVO4 nanosheets/reduced graphene oxide (RGO) based 2D-2D heterojunction photocatalytic system as well as 0D-2D BiVO4 nanoparticles/RGO and 1D-2D BiVO4 nanotubes/RGO nanocomposites are fabricated by a feasible solvothermal process. During the synthesis; the growth of BiVO4 and the intimate interfacial contact between BiVO4 and RGO occur simultaneously. Compared to 0D-2D and 1D-2D heterojunctions, the resulting 2D-2D BiVO4 nanosheets/RGO composites yield superior chemical coupling; leading to exhibit higher photocatalytic activity toward the degradation of acetaminophen under visible light irradiation. Photoluminescence (PL) and photocurrent experiments revealed that the apparent electron transfer rate in 2D-2D BiVO4 nanosheets/RGO composites is faster than that in 0D-2D BiVO4 nanoparticles/RGO composites. The experimental findings presented here clearly demonstrate that the 2D-2D heterojunction interface can highlight the optoelectronic coupling between nanomaterials and promote the electron–hole separation. This study will motivate new developments in dimensionality factors on designing the heterojunction photocatalysts and promote their photodegradation photocatalytic application in environmental issues.
机译:石墨烯作为二维(2D)纳米平台有利于组装2D异质结光催化系统,以促进半导体复合材料中的电子转移。在这里,通过可行的溶剂热工艺制备了基于BiVO4纳米片/氧化石墨烯(RGO)的2D-2D异质结光催化系统以及0D-2D BiVO4纳米颗粒/ RGO和1D-2D BiVO4纳米管/ RGO纳米复合材料。在合成过程中; BiVO4的生长以及BiVO4与RGO之间的紧密界面接触是同时发生的。与0D-2D和1D-2D异质结相比,所得的2D-2D BiVO4纳米片/ RGO复合材料具有优异的化学偶联;导致在可见光照射下对乙酰氨基酚的降解表现出更高的光催化活性。光致发光(PL)和光电流实验表明,二维0D-2D BiVO4纳米片/ RGO复合材料中2D-2D BiVO4纳米片/ RGO复合材料的表观电子传递速率更快。这里展示的实验结果清楚地表明2D-2D异质结界面可以突出纳米材料之间的光电耦合并促进电子-空穴的分离。这项研究将激发设计异质结光催化剂的尺寸因素的新发展,并促进它们在环境问题中的光降解光催化应用。

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