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首页> 外文期刊>Energy Technology: Generation,Conversion,Storage,Distribution >Facile and Scalable Fabrication of Porous g-C3N4 Nanosheets with Nitrogen Defects and Oxygen-Doping for Synergistically Promoted Visible Light Photocatalytic H-2 Evolution
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Facile and Scalable Fabrication of Porous g-C3N4 Nanosheets with Nitrogen Defects and Oxygen-Doping for Synergistically Promoted Visible Light Photocatalytic H-2 Evolution

机译:具有氮气缺损和氧掺杂的多孔G-C3N4纳米片的容易和可伸缩的制造,用于协同促进的可见光光催化H-2进化

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摘要

A facile and scalable approach is firstly presented to fabricate novel O-doped nitrogen defective porous g-C3N4 nanosheets (PNV-CN) through thermal polymerization of a guanylurea nitrate (GLUN) precursor that forms by a nitric acid assisted heating reaction process of dicyandiamide (DCDA), in which nitrate ions act as the intensified gas template function for producing pores and carbon nitride nanosheet structures and the oxidant for forming nitrogen defects. PNV-CN demonstrates a high visible light photocatalytic activity of 62.4molh(-1) and an apparent quantum efficiency of 4.0% at 420nm with 17.3 and 5.5 times higher hydrogen evolution rate (HER) than bulk g-C3N4 (B-CN) prepared by thermal polymerization of DCDA and the loose g-C3N4 (LB-CN), prepared via thermal polymerization of a mixture (DMDN) consisting of dicyandiamide nitrate (DN), GLUN, and their hydrogen-bonding macromolecular compounds by drying the physical mixture of DCDA and nitric acid, respectively. The outstanding photocatalytic properties of PNV-CN for visible light-driven hydrogen evolution originate from the enhanced charge separation and migration, extending visible light absorption tails, promoting recombination of charge carriers, increased active sites, and strengthened mass transfer process that results from the synergistically promoting effect of hierarchical porous morphology, as-formed nitrogen defects, O-doping and the unique nanosheet structure.
机译:首先提出了一种容易和可扩展的方法,以通过通过双氰胺的硝酸辅助加热反应方法形成的胍基硝酸盐(GLUN)前体的热聚合来制造新的O掺杂的氮气缺陷多孔G-C3N4纳米蛋白(PNV-CN)。 DCDA),其中硝酸根离子作为产生孔和氮化物纳米片结构和用于形成氮缺陷的氧化剂的加强气体模板功能。 PNV-CN示出了62.4molH(-1)的高可见光光催化活性,表观量子效率为420nm,氢进化速率(其)制备的散热率高(220nm)通过DCDA的热聚合和松散的G-C3N4(LB-CN),通过使由双氰胺硝酸二氮(DN),Glun和它们的氢键键合的大分子化合物组成的混合物(DMDN)制备的(DMDN)制备分别为DCDA和硝酸。 PNV-CN的出色光催化性能对于可见光氢进化,源自增强的电荷分离和迁移,延伸可见光吸收尾,促进电荷载体的重组,增加的活性位点,并加强来自协同的传质过程促进分层多孔形态,形成氮缺陷,O型掺杂和独特纳米片结构的影响。

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