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用于增强电催化和电分析的PtNiCo/NiCoS纳米线中的界面工程

Interfacial Engineering in PtNiCo/NiCoS Nanowires for Enhanced Electrocatalysis and Electroanalysis.

作者信息

Sun Yingjun, Li Yingjie, Qin Yingnan, Wang Lei, Guo Shaojun

机构信息

Key Laboratory of Eco-Chemical Engineering, Taishan Scholar Advantage and Characteristic Discipline Team of Eco Chemical Process and Technology, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, P. R. China.

Department of Materials Science & Engineering, College of Engineering, Peking University, Beijing, 100871, P. R. China.

出版信息

Chemistry. 2020 Mar 26;26(18):4032-4038. doi: 10.1002/chem.201904473. Epub 2019 Dec 27.

Abstract

Searching for new anti-poisoning Pt-based catalysts with enhanced activity for alcohol oxidation is the key in direct alcohol fuel cells (DAFCs). However, in the traditional strategy for designing bimetallic or multimetallic alloy is still difficult to achieve a satisfactory heterogeneous electrocatalyst because the activity often depends on only the surface atoms. Herein, we fabricate the multicomponent active sites by creating a sulfide structure on 1D PtNiCo trimetallic nanowires (NWs), to give a PtNiCo/NiCoS interface NWs (IFNWs). Owing to the presence of sulfide interfaces, the PtNiCo/NiCoS IFNWs enable an impressive methanol/ethanol oxidation reaction (MOR/EOR) performance and excellent anti-CO poisoning tolerance. They have the MOR and EOR mass activities of 2.25 Amg and 1.62 Amg , around 1.26, 3.21 and 1.46, 2.96 times higher than those of PtNiCo NWs and commercial Pt/C, respectively. CO-stripping and XPS measurements further demonstrate that the new interfacial structure and optimal bonding of Pt-CO can result in accelerating the removal of surface adsorbed carbonaceous intermediates. Moreover, such a unique structure has also demonstrated a much-improved ability for the electrochemical detection of some important molecules (H O and NH NH ).

摘要

寻找具有增强醇氧化活性的新型抗中毒铂基催化剂是直接醇燃料电池(DAFC)的关键。然而,在传统的双金属或多金属合金设计策略中,仍然难以获得令人满意的非均相电催化剂,因为活性往往仅取决于表面原子。在此,我们通过在一维PtNiCo三金属纳米线(NWs)上创建硫化物结构来制备多组分活性位点,得到PtNiCo/NiCoS界面纳米线(IFNWs)。由于硫化物界面的存在,PtNiCo/NiCoS IFNWs具有令人印象深刻的甲醇/乙醇氧化反应(MOR/EOR)性能和出色的抗CO中毒耐受性。它们的MOR和EOR质量活性分别为2.25 Amg 和1.62 Amg ,分别比PtNiCo NWs和商业Pt/C高约1.26、3.21倍和1.46、2.96倍。CO剥离和XPS测量进一步表明,新的界面结构和Pt-CO的最佳键合可加速表面吸附的含碳中间体的去除。此外,这种独特的结构在一些重要分子(H O和NH NH )的电化学检测方面也表现出大大提高的能力。

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