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掺杂诱导的聚合氮化碳中的氢键工程以显著提高光催化析氢性能

Doping-Induced Hydrogen-Bond Engineering in Polymeric Carbon Nitride To Significantly Boost the Photocatalytic H Evolution Performance.

作者信息

Li Bo, Si Yuan, Zhou Bing-Xin, Fang Qian, Li Yuan-Yuan, Huang Wei-Qing, Hu Wangyu, Pan Anlian, Fan Xiaoxing, Huang Gui-Fang

机构信息

Department of Applied Physics, School of Physics and Electronics, and School of Materials Science and Engineering , Hunan University , Changsha , Hunan 410082 , China.

School of Physics , Liaoning University , Shenyang 110036 , China.

出版信息

ACS Appl Mater Interfaces. 2019 May 15;11(19):17341-17349. doi: 10.1021/acsami.8b22366. Epub 2019 Apr 17.

Abstract

Unlike graphene, graphitic carbon nitride (CN) polymer contains a weak hydrogen bond and van der Waals (vdWs) interactions besides a strong covalent bond, which controls its final morphology and functionality. Herein, we propose a novel strategy, hydrogen-bond engineering, to tune hydrogen bonds in polymeric CN through nonmetal codoping. Incorporation of B and P dopants breaks partial hydrogen bonds within the layers and simultaneously weakens the vdWs interaction between neighboring layers, resulting in ultrathin codoped CN nanosheets. The two-dimensional structure of the ultrathin sheet, broken hydrogen bonds, and incorporated dopants endow them with efficient visible light harvesting, improved charge separation, and increased active edge sites that synergistically enhance the photocatalytic activity of doped CN. Specifically, the B/P-codoped CN exhibits an extremely high hydrogen-evolution rate of 10877.40 μmol h g, much higher than most reported values of CN. This work demonstrates that hydrogen bond engineering is an effective strategy to modify the structure and properties of polymers for various applications.

摘要

与石墨烯不同,石墨相氮化碳(CN)聚合物除了具有强共价键外,还包含弱氢键和范德华(vdWs)相互作用,这决定了其最终的形态和功能。在此,我们提出了一种新策略——氢键工程,通过非金属共掺杂来调控聚合物CN中的氢键。硼(B)和磷(P)掺杂剂的引入打破了层内的部分氢键,同时减弱了相邻层之间的vdWs相互作用,从而得到超薄的共掺杂CN纳米片。超薄片的二维结构、断裂的氢键以及引入的掺杂剂赋予它们高效的可见光捕获能力、改善的电荷分离以及增加的活性边缘位点,协同增强了掺杂CN的光催化活性。具体而言,B/P共掺杂的CN表现出极高的析氢速率,为10877.40 μmol h g,远高于大多数已报道的CN值。这项工作表明,氢键工程是一种有效的策略,可用于修饰聚合物的结构和性能以实现各种应用。

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