首页> 外文期刊>International journal of hydrogen energy >Facile synthesis of C-doped hollow spherical g-C_3N4 from supramolecular self-assembly for enhanced photoredox water splitting
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Facile synthesis of C-doped hollow spherical g-C_3N4 from supramolecular self-assembly for enhanced photoredox water splitting

机译:利用超分子自组装轻松合成C掺杂空心球g-C_3N4以增强光氧化还原水分解

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A facial, template-free and green strategy was developed to prepare C-doped hollow spherical g-C3N4 derived from supramolecular self-assembly of melamine, glucose and cyanuric acid. Especially, the precursors were tightly connected by hydrogen bonds, wherein glucose was served as a source of doped carbon. Spectroscopic and electrochemical analysis confirmed that the endmost nitrogen was replaced by the doped carbon to combine two melon parts, leading to the possible existence of the delocalized big pi bonds in the system. Moreover, the GCN-x not only maintained the excellent properties of the hollow sphere, such as high surface area, moderate porosity and short charges diffusion distance, but also overcame the drawbacks of low visible light response and high electron-holes recombination rate from bulk g-C3N4. Thereby, the visible light utilization rate and the photogenerated electron-holes separation efficiency of the catalyst were improved. The highest hydrogen yield of 305 mu mol h(-1) from GCN-0.2 was 28.5 times that of bulk g-C3N4. Finally, a possible mechanism underlying the photocatalytic performance of C-doped g-C3N4 hollow spheres was proposed tentatively. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:开发了一种面部,无模板和绿色策略,以制备由三聚氰胺,葡萄糖和氰尿酸的超分子自组装获得的C掺杂空心球形g-C3N4。特别地,前体通过氢键紧密连接,其中葡萄糖用作掺杂碳的来源。光谱和电化学分析证实,最末端的氮被掺杂的碳代替,从而结合了两个瓜部分,从而导致系统中可能存在离域的大pi键。此外,GCN-x不仅保持了中空球体的优异性能,例如高表面积,适度的孔隙率和较短的电荷扩散距离,而且还克服了可见光响应低和体积电子空穴复合率高的缺点。 g-C3N4。由此,提高了催化剂的可见光利用率和光生电子-空穴分离效率。来自GCN-0.2的最高305 mol mol h(-1)的氢气产率是本体g-C3N4的28.5倍。最后,初步提出了掺碳g-C3N4空心球光催化性能的潜在机理。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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