首页> 外文期刊>International journal of hydrogen energy >In- situ solid-phase fabrication of Ag/AgX (X=Cl, Br,I)/g-G_3N_4 composites for enhanced visible-light hydrogen evolution
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In- situ solid-phase fabrication of Ag/AgX (X=Cl, Br,I)/g-G_3N_4 composites for enhanced visible-light hydrogen evolution

机译:Ag / AgX(X = Cl,Br,I)/ g-G_3N_4复合材料的原位固相制备以增强可见光氢的释放

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摘要

In this work, a series of Ag/AgX (X = Cl, Br, I)/g-C3N4 (Ag/AgX/CN) composites were successfully fabricated by an in-situ solid phase method. The morphology and structure, photoluminescence and photoelectrochemical properties of composites were investigated in detail. The as-prepared Ag/AgX/CN composites were used as H-2 evolution photocatalysts under visible-light irradiation with a sacrificial agent. The experimental results revealed that Ag/AgI/CN-4 composite possesses highest-H-2 evolution rate (up to 59.22 mu mol g(-1) h(-1)) which are approximately 31 times higher than that of pure g-C3N4 (1.94 mu mol g(-1) h(-1)). In addition, Ag/AgCl/CN-4 and Ag/AgBr/CN-4 composites also present high photocatalytic activities yielding, 26.39 and 18.05 mu mol(H2) g(-1)h(-1), respectively. The enhanced photo catalytic activities of Ag/AgI/CN-4 composite might be attributed to the synergistic effect between Ag/AgI nanoparticles and g-C3N4 and the localized surface plasmon resonance effect of metallic Ag. Moreover, Ag/AgI/CN-4 composite showed excellent recyclability and stability after five cycling photocatalytic tests (about 25 h). Furthermore, the possible photocatalytic mechanism of Ag/AgI/CN composites is proposed. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项工作中,通过原位固相方法成功地制备了一系列Ag / AgX(X = Cl,Br,I)/ g-C3N4(Ag / AgX / CN)复合材料。详细研究了复合材料的形貌,结构,光致发光和光电化学性能。所制备的Ag / AgX / CN复合材料在可见光照射下用牺牲剂作为H-2析出光催化剂。实验结果表明,Ag / AgI / CN-4复合材料具有最高的H-2演化速率(高达59.22μmol g(-1)h(-1)),约为纯g-的31倍。 C 3 N 4(1.94μmolg(-1)h(-1))。此外,Ag / AgCl / CN-4和Ag / AgBr / CN-4复合材料还具有较高的光催化活性,分别产生26.39和18.05μmol(H2)g(-1)h(-1)。 Ag / AgI / CN-4复合材料增强的光催化活性可能归因于Ag / AgI纳米颗粒与g-C3N4的协同作用以及金属Ag的局部表面等离子体共振效应。此外,经过五次循环光催化测试(约25小时),Ag / AgI / CN-4复合材料显示出出色的可回收性和稳定性。此外,提出了可能的Ag / AgI / CN复合材料的光催化机理。 (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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