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源自金属有机框架的多功能功能性多孔钴镍磷化物-碳助催化剂用于提高石墨相氮化碳的光催化活性

Versatile Functional Porous Cobalt-Nickel Phosphide-Carbon Cocatalyst Derived from a Metal-Organic Framework for Boosting the Photocatalytic Activity of Graphitic Carbon Nitride.

作者信息

Li Kui, Zhang Yu, Lin Ye-Zhan, Wang Kai, Liu Fu-Tian

机构信息

School of Materials Science and Engineering , University of Jinan , Jinan 250022 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2019 Aug 14;11(32):28918-28927. doi: 10.1021/acsami.9b09312. Epub 2019 Aug 5.

Abstract

Metal-organic framework-templated g-CN-NiCoP-porous carbon (PC) ternary hybrid nanomaterials were designed by taking full advantage of the metal-organic framework (MOF) derivative in the photocatalytic reaction for the first time. The MOF-templated porous structure could prevent the stacking of the carbon nitride nanosheet, and the carefully designed NiCoP, possessing low electrocatalytic hydrogen evolution reaction (HER) overpotential and flat-band potential, could improve the separation as well as the utilization efficiency of photogenerated electron-hole pairs. Moreover, the ligand-templated porous carbon, acting as an interface mediator between g-CN and the NiCoP cocatalyst, could boost the charge carrier transport. Consequently, the optimal ternary g-CN-NiCoP-PC heterostructure exhibited enhanced photocatalytic HER performance and considerable H evolution performance of 5.8 μmol/h/g under UV-visible light with stoichiometric HO production even in pure water. This work took full advantage of the MOF derivative for improving the photocatalytic reaction activity and provided a method that can hopefully help in designing a novel high-performance catalyst for solar conversion.

摘要

首次通过充分利用金属有机框架(MOF)衍生物,设计出了金属有机框架模板化的g-CN-NiCoP-多孔碳(PC)三元杂化纳米材料用于光催化反应。MOF模板化的多孔结构可防止氮化碳纳米片的堆叠,精心设计的NiCoP具有低的电催化析氢反应(HER)过电位和平带电位,可提高光生电子-空穴对的分离及利用效率。此外,配体模板化的多孔碳作为g-CN与NiCoP助催化剂之间的界面介质,可促进电荷载流子传输。因此,最佳的三元g-CN-NiCoP-PC异质结构在紫外-可见光下表现出增强的光催化HER性能,即使在纯水中也具有5.8 μmol/h/g的可观析氢性能,且能以化学计量比产生H₂O。这项工作充分利用MOF衍生物提高了光催化反应活性,并提供了一种有望有助于设计新型高效太阳能转换催化剂的方法。

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