State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, P. R. China.
Nanoscale. 2018 Oct 18;10(40):19023-19030. doi: 10.1039/c8nr06360e.
Complex porous carbon nanostructures with homogeneously embedded nanoparticles and intricate architectures show promise as high-performance catalysts. Herein, we demonstrate a direct surfactant co-assembly approach for the fabrication of well-dispersed PdCu nanoparticles encapsulated in N-doped porous carbon with three-dimensional coralline structures. Owing to their porous features and unique frameworks, the PdxCuy@N-pC coralline-like nanostructures offer large surface areas, accessible active sites, and excellent nitrate electrocatalytic ability. The composite catalyst Pd4Cu4@N-pC exhibits outstanding catalytic performance with a high nitrate removal rate of ∼95%, nitrogen selectivity of ∼80%, and removal capacity of 22 000 mg N per g PdCu. More importantly, the present work opens up a broad horizon for architectures of nanoparticles confined in coralline-like 3D porous carbon structures with superior performance and promising large-scale applications.
具有均匀嵌入纳米粒子和复杂结构的复杂多孔碳纳米结构有望成为高性能催化剂。本文展示了一种直接的表面活性剂共组装方法,用于制备具有三维珊瑚状结构的氮掺杂多孔碳中均匀分散的 PdCu 纳米粒子。由于其多孔特性和独特的骨架,PdxCuy@N-pC 珊瑚状纳米结构提供了大的表面积、可及的活性位点和优异的硝酸盐电催化能力。复合催化剂 Pd4Cu4@N-pC 表现出优异的催化性能,硝酸盐去除率约为 95%,氮选择性约为 80%,每克 PdCu 的去除容量为 22000 毫克 N。更重要的是,本工作为具有优异性能和广阔应用前景的纳米粒子限域在珊瑚状 3D 多孔碳结构中的构筑提供了广阔的前景。