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工程化具有定制三维催化面的多孔钯铜纳米晶体用于高效甲酸氧化。

Engineering porous Pd-Cu nanocrystals with tailored three-dimensional catalytic facets for highly efficient formic acid oxidation.

作者信息

Lu Linfang, Wang Bing, Wu Di, Zou Shihui, Fang Baizeng

机构信息

College of Material, Chemistry and Chemical Engineering, Hangzhou Normal University, Hangzhou 311121, China.

Key Lab of Applied Chemistry of Zhejiang Province, Department of Chemistry, Zhejiang University, Hangzhou 310027, China.

出版信息

Nanoscale. 2021 Feb 14;13(6):3709-3722. doi: 10.1039/d0nr09164b. Epub 2021 Feb 5.

Abstract

Rational synthesis of bi- or multi-metallic nanomaterials with both dendritic and porous features is appealing yet challenging. Herein, with the cubic CuO nanoparticles composed of ultrafine CuO nanocrystals as a self-template, a series of Pd-Cu nanocrystals with different morphologies (e.g., aggregates, porous nanodendrites, meshy nanochains and porous nanoboxes) are synthesized through simply regulating the molar ratio of the Pd precursor to the cubic CuO, indicating that the galvanic replacement and Kirkendall effect across the alloying process are well controlled. Among the as-developed various Pd-Cu nanocrystals, the porous nanodendrites with both dendritic and hollow features show superior electrocatalytic activity toward formic acid oxidation. Comprehensive characterizations including three-dimensional simulated reconstruction of a single particle and high-resolution transmission electron microscopy reveal that the surface steps, defects, three-dimensional architecture, and the electronic/strain effects between Cu and Pd are responsible for the outstanding catalytic activity and excellent stability of the Pd-Cu porous nanodendrites.

摘要

合理合成具有树枝状和多孔特征的双金属或多金属纳米材料既具有吸引力又具有挑战性。在此,以由超细CuO纳米晶体组成的立方CuO纳米颗粒作为自模板,通过简单调节Pd前驱体与立方CuO的摩尔比,合成了一系列具有不同形态(如聚集体、多孔纳米树枝晶、网状纳米链和多孔纳米盒)的Pd-Cu纳米晶体,这表明在合金化过程中的电化学生置换和柯肯达尔效应得到了很好的控制。在已开发的各种Pd-Cu纳米晶体中,具有树枝状和中空特征的多孔纳米树枝晶对甲酸氧化表现出优异的电催化活性。包括单颗粒三维模拟重建和高分辨率透射电子显微镜在内的综合表征表明,表面台阶、缺陷、三维结构以及Cu和Pd之间的电子/应变效应是Pd-Cu多孔纳米树枝晶具有出色催化活性和优异稳定性的原因。

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