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基于多酸的双功能 Cu P 纳米粒子,其表面包覆有 N,P 共掺杂的碳壳,用于析氢和氧还原反应。

MOF-Derived Bifunctional Cu P Nanoparticles Coated by a N,P-Codoped Carbon Shell for Hydrogen Evolution and Oxygen Reduction.

机构信息

College of Chemistry and Molecular Engineering, Zhengzhou University, Zhengzhou, 450001, China.

College of Chemistry and Chemical Engineering, Henan Polytechnic University, Jiaozuo, 454000, China.

出版信息

Adv Mater. 2018 Feb;30(6). doi: 10.1002/adma.201703711. Epub 2017 Dec 21.

Abstract

Metal-organic frameworks (MOFs) have recently emerged as a type of uniformly and periodically atom-distributed precursor and efficient self-sacrificial template to fabricate hierarchical porous-carbon-related nanostructured functional materials. For the first time, a Cu-based MOF, i.e., Cu-NPMOF is used, whose linkers contain nitrogen and phosphorus heteroatoms, as a single precursor and template to prepare novel Cu P nanoparticles (NPs) coated by a N,P-codoped carbon shell that is extended to a hierarchical porous carbon matrix with identical uniform N and P doping (termed Cu P@NPPC) as an electrocatalyst. Cu P@NPPC demonstrates outstanding activity for both the hydrogen evolution and oxygen reduction reaction, representing the first example of a Cu P-based bifunctional catalyst for energy-conversion reactions. The high performances are ascribed to the high specific surface area, the synergistic effects of the Cu P NPs with intrinsic activity, the protection of the carbon shell, and the hierarchical porous carbon matrix doped by multiheteroatoms. This strategy of using a diverse MOF as a structural and compositional material to create a new multifunctional composite/hybrid may expand the opportunities to explore highly efficient and robust non-noble-metal catalysts for energy-conversion reactions.

摘要

金属-有机骨架(MOFs)最近作为一种均匀和周期性原子分布的前体和高效自牺牲模板出现,用于制造分级多孔碳相关的纳米结构功能材料。首次使用了一种含氮和磷杂原子的基于铜的 MOF,即 Cu-NPMOF,作为单一前体和模板,制备了由氮、磷共掺杂碳壳延伸至具有相同均匀氮和磷掺杂的分级多孔碳基质的新型 Cu P 纳米颗粒(NPs)包覆的 Cu P 纳米粒子(NPs)(称为 Cu P@NPPC)作为电催化剂。Cu P@NPPC 对析氢和氧还原反应均表现出优异的活性,是首例用于能量转换反应的基于 Cu P 的双功能催化剂。高性能归因于高比表面积、具有内在活性的 Cu P NPs 的协同效应、碳壳的保护以及多杂原子掺杂的分级多孔碳基质。这种使用多样化 MOF 作为结构和组成材料来创建新型多功能复合材料/杂化材料的策略可能会扩大探索高效、稳健的非贵金属催化剂用于能量转换反应的机会。

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