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Room-temperature synthesis of BiOI/Graphene oxide foam composite for phenol removal under visible light

机译:室温合成BiOI /氧化石墨烯泡沫复合材料在可见光下去除苯酚

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摘要

The coupling of graphene-based materials is a widely adopted method to effectively separate photo-induced electrons and holes, and consequently, improve the performance of photocatalysts. However, the surface modification of semiconductors with graphene materials can block incident light; this is undesirable for the activity enhancement of photocatalysts. To solve this problem, a composite of graphene oxide foam coated with bismuth oxyiodide (GOF-BiOI) was synthesized at room temperature using an in-situ deposition approach. In the composite, BiOI flake arrays stand vertically and uniformly on the surface of GOF. Furthermore, the as-prepared GOF-BiOI exhibited a higher photocatalytic activity than BiOI and GO-modified BiOI for the oxidization of phenol under visible light. Based on a collective analysis of the reactive species, photoluminescence, light absorption, textural and morphological properties, the enhanced photocatalytic activity of GOF-BiOI was attributed to the electron trapping role of GOF, which effectively suppress charge recombination, and to the unique structure of GOF-BiOI, which favored not only light absorption but also the attachment of reactive materials and the surface of BiOI.
机译:石墨烯基材料的偶联是一种广泛采用的方法,可以有效地分离光致电子和空穴,从而提高光催化剂的性能。但是,用石墨烯材料对半导体进行表面改性会阻止入射光。这对于增强光催化剂的活性是不希望的。为了解决该问题,使用原位沉积方法在室温下合成了涂覆有碘氧化铋(GOF-BiOI)的氧化石墨烯泡沫复合材料。在复合材料中,BiOI薄片阵列垂直且均匀地站立在GOF的表面上。此外,所制备的GOF-BiOI在可见光下比BiOI和GO修饰的BiOI具有更高的光催化活性。在对反应性物种,光致发光,光吸收,结构和形态特性进行综合分析的基础上,GOF-BiOI的增强的光催化活性归因于GOF的电子俘获作用,该作用有效抑制了电荷重组,并且归因于GOF-BiOI,不仅有利于光吸收,而且有利于反应性材料与BiOI表面的附着。

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