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钯@铂M(M = 铑、镍、钯、铜)多金属纳米环的简便合成及其作为乙醇氧化反应高效催化剂的研究

Facile Synthesis of Pd@PtM ( = Rh, Ni, Pd, Cu) Multimetallic Nanorings as Efficient Catalysts for Ethanol Oxidation Reaction.

作者信息

Wu Xingqiao, Li Xiao, Yan Yucong, Luo Sai, Huang Jingbo, Li Junjie, Yang Deren, Zhang Hui

机构信息

State Key Laboratory of Silicon Materials, Cyrus Tang Center for Sensor Materials and Applications, School of Materials Science and Engineering, Zhejiang University, Hangzhou, China.

BTR New Material Group CO., LTD., Shenzhen, China.

出版信息

Front Chem. 2021 May 19;9:683450. doi: 10.3389/fchem.2021.683450. eCollection 2021.

Abstract

Pt-based multimetallic nanorings with a hollow structure are attractive as advanced catalysts due to their fantastic structure feature. However, the general method for the synthesis of such unique nanostructures is still lack. Here we report the synthesis of Pd@PtM ( = Rh, Ni, Pd, Cu) multimetallic nanorings by selective epitaxial growth of Pt alloyed shells on the periphery of Pd nanoplates in combination with oxidative etching of partial Pd in the interior. generation of CO and benzoic acid arising from interfacial catalytic reactions between Pd nanoplates and benzaldehyde are critical to achieve high-quality Pt-based multimetallic nanorings. Specifically, the generated CO promotes the formation of Pt alloyed shells and their epitaxial growth on Pd nanoplates. In addition, the as-formed benzoic acid and residual oxygen are responsible for selective oxidative etching of partial Pd in the interior. When evaluated as electrocatalysts, the Pd@PtRh nanorings exhibit remarkably enhanced activity and stability for ethanol oxidation reaction (EOR) compared to the Pd@PtRh nanoplates and commercial Pt/C due to their hollow nanostructures.

摘要

具有中空结构的铂基多金属纳米环因其出色的结构特性而作为先进催化剂备受关注。然而,合成这种独特纳米结构的通用方法仍然缺乏。在此,我们报道了通过在钯纳米板周边选择性外延生长铂合金壳层并结合内部部分钯的氧化蚀刻来合成Pd@PtM(M = Rh、Ni、Pd、Cu)多金属纳米环。钯纳米板与苯甲醛之间的界面催化反应产生的一氧化碳和苯甲酸对于获得高质量的铂基多金属纳米环至关重要。具体而言,生成的一氧化碳促进了铂合金壳层的形成及其在钯纳米板上的外延生长。此外,生成的苯甲酸和残余氧负责内部部分钯的选择性氧化蚀刻。当用作电催化剂时,由于其空心纳米结构,Pd@PtRh纳米环比Pd@PtRh纳米板和商业Pt/C对乙醇氧化反应(EOR)表现出显著增强的活性和稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/86a9/8170318/c7e29a9b990e/fchem-09-683450-g0001.jpg

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