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Facile construction of phosphate incorporated graphitic carbon nitride with mesoporous structure and superior performance for H_2 production

机译:具有介孔结构且具有优异的H_2生产性能的磷酸盐结合石墨氮化碳的简便构造

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Novel mesoporous phosphate incorporated g-C3N4 (CNM-Px) polymeric material was synthesized via a facile hydrothermal-calcination method, using melamine as precursor and phosphoric acid as dopant. The successful incorporation of phosphate into the framework of g-C3N4 nanosheets was verified by XRD, FT-IR and XPS characterizations and the possible formation mechanism was put forward. The as-fabricated CNM-Px samples were applied to photocatalytic hydrogen evolution reaction and exhibited remarkably improved photocatalytic performance both under simulated sunlight and visible light irradiation. The concentration of phosphoric acid was also well tuned and the optimal concentration was 2.5 mol L-1. The hydrogen evolution rate of the optimized sample CNM-P2.5 (the concentration of treating phosphoric acid was 2.5 mol L-1) reached 8163 mu mol g(-1) h(-1) under simulated sunlight irradiation, which is 3.7 times higher than that of pristine g-C3N4 (CNM). It also showed dramatically improved hydrogen evolution rate under visible light irradiation, which was 2105 mu mol g(-1) h(-1), about 6.7 times higher than that of CNM. The excellent photocatalytic activity of CNM-Px samples is due to the synergic advantages of larger surface area and reduced recombination of photo-generated electrons and holes. This study paves the way for tailoring design and synthesis of highly active metal-free carbon nitride materials for photocatalytic hydrogen evolution. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:采用三聚氰胺为前驱体,磷酸为掺杂剂,通过简便的水热煅烧法合成了新型的掺入有介孔磷酸盐的g-C3N4(CNM-Px)聚合物。通过XRD,FT-IR和XPS表征验证了磷酸盐成功地掺入g-C3N4纳米片的框架中,并提出了可能的形成机理。将制成的CNM-Px样品用于光催化氢释放反应,并在模拟日光和可见光照射下均表现出显着改善的光催化性能。磷酸的浓度也得到了很好的调整,最佳浓度为2.5 mol L-1。经过优化的样品CNM-P2.5(处理的磷酸浓度为2.5 mol L-1)在模拟阳光照射下的析氢速率达到8163μmol g(-1)h(-1)。高于原始g-C3N4(CNM)。它也显示出在可见光照射下氢的放出速率显着提高,为2105μmol g(-1)h(-1),比CNM高6.7倍。 CNM-Px样品具有出色的光催化活性,这是由于具有较大的表面积以及光生电子和空穴的重组减少的协同优势。这项研究为定制设计和合成用于光催化制氢的高活性无金属氮化碳材料铺平了道路。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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