Hou Jianhua, Jiang Kun, Shen Ming, Wei Rui, Wu Xiaoge, Idrees Faryal, Cao Chuanbao
Jiangsu Key Laboratory of Environmental Material and Engineering, College of Environmental Science and Engineering, Yangzhou University, Yangzhou, 225127, P. R. China.
College of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou, 225002, P. R. China.
Sci Rep. 2017 Sep 15;7(1):11665. doi: 10.1038/s41598-017-12266-x.
Constructing the heterojunctions or designing the novel nanostructures are thought as effective methods to improve photocatalytic activities of semiconductors. Herein, a one-step green route was developed to fabricate bismuth oxyiodide/activated carbon (BiOI/C) composite. The prepared BiOI/C exhibit obviously red shifts and increased absorption range of visible light. The presence of Bi-C bonds confirms the heterojunction, on account of which the BiOI nanosheets tightly grew on the surface of carbon and subsequently provided the hierarchical structure, sufficient interfacial interaction and high specific surface area. Significantly, the sufficient interracial interaction is beneficial to the detachment of electrons (e)-holes (h) pairs and the Bi-C bonds work like a bridge to rapidly transmit the e from BiOI to carbon. What's more, the hierarchical structure of BiOI/C efficiently shortened the diffusion pathways of pollutants and the high S provided more exposed reaction sites. Benefiting from multiple synergistic effects, the as-prepared BiOI/C exhibited enhanced photocatalytic activities in degrading Rhodamine B (RhB) solution under visible light irradiation. The degradation rate of optimized BiOI/C reaches up to 95% in 120 min, and the efficiency is 3.36 times higher than pure BiOI. This study provides a promising strategy that activated carbon can be utilized in highly-efficiency photocatalysts.
构建异质结或设计新型纳米结构被认为是提高半导体光催化活性的有效方法。在此,开发了一种一步绿色路线来制备碘氧化铋/活性炭(BiOI/C)复合材料。制备的BiOI/C表现出明显的红移和可见光吸收范围的增加。Bi-C键的存在证实了异质结的形成,基于此,BiOI纳米片紧密生长在碳表面,随后提供了分级结构、足够的界面相互作用和高比表面积。值得注意的是,充分的界面相互作用有利于电子(e)-空穴(h)对的分离,并且Bi-C键起到桥梁的作用,将电子从BiOI快速传输到碳上。此外,BiOI/C的分级结构有效地缩短了污染物的扩散路径,高比表面积提供了更多暴露的反应位点。受益于多种协同效应,所制备的BiOI/C在可见光照射下降解罗丹明B(RhB)溶液时表现出增强的光催化活性。优化后的BiOI/C在120分钟内的降解率高达95%,效率比纯BiOI高3.36倍。该研究提供了一种有前景的策略,即活性炭可用于高效光催化剂。