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首页> 外文期刊>New Journal of Chemistry >Ni@M (M = Pt, Pd and Ru) core@shell nanoparticles on a Vulcan XC-72R support with superior catalytic activity toward borohydride oxidation: electrochemical and fuel cell studies
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Ni@M (M = Pt, Pd and Ru) core@shell nanoparticles on a Vulcan XC-72R support with superior catalytic activity toward borohydride oxidation: electrochemical and fuel cell studies

机译:Ni @ m(m = pt,pd和ru)核心@ shell纳米粒子对硫磺Xc-72R的载体载体具有优异的催化活性朝向硼氢化物氧化:电化学和燃料电池研究

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摘要

Ni@Pt, Ni@Pd and Ni@Ru nanoparticles with a core@shell structure were synthesized using a two-step reduction method on a Vulcan XC-72R support using sodium borohydride (NaBH4) and ethylene glycol (EG) as reducing agents for each step, respectively. The metal loading in electrocatalysts was 20 wt% and the molar ratio of Ni to M (M = Pt, Pd and Ru) was 1 : 1. The morphology of the synthesized electrocatalysts was characterized using field emission scanning electron microscopy (FE-SEM), energy-dispersive X-ray spectroscopy (EDX), X-ray diffraction (XRD), transmission electron microscopy (TEM) and high-resolution transmission electron microscopy (HR-TEM) and fast Fourier transformation (FFT) methods. The electrocatalytic activity of the synthesized electrocatalysts toward borohydride oxidation in alkaline medium was investigated using cyclic voltammetry (CV), chronopotentiometry (CP) chronoamperometry (CA) and electrochemical impedance spectroscopy (EIS). The results showed that Ni@Pd/C has the highest electrochemically active surface area (ECSA) (164.9 m(2) g(-1)) that is 1.69 and 2.39 times higher than Ni@Pt/C (97.3 m(2) g(-1)) and Ni@Ru/C (69.1 m(2) g(-1)), respectively. Also, Ni@Pd/C showed superior catalytic activity toward borohydride oxidation (29 022 A g(-1)) that is 1.32 and 8.55 times higher than Ni@Pt/C (22 016 A g(-1)) and Ni@Ru/C (3394 A g(-1)) catalysts, respectively. A Membrane Electrode Assembly (MEA) was fabricated with the catalyst-coated membrane (CCM) technique using Ni@Pt/C, Ni@Pd/C and Ni@Ru/C as anodic electrocatalysts and Pt/C as a cathodic electrocatalyst. The results showed that the fuel cell with the Ni@Pd/C electrocatalyst has the maximum power density (200.78 mW cm(-2)).
机译:使用硼氢化钠(NaBH4)和乙二醇(例如)作为还原剂,使用双步XC-72R支持的两步还原方法合成具有核心壳结构的Ni @ Pt,Ni @ Pd和Ni @ ru纳米粒子。每个步骤分别。电催化剂中的金属负载是20wt%,Ni至M(m = Pt,Pd和Ru)的摩尔比为1:1。使用现场发射扫描电子显微镜(Fe-SEM)表征合成电催化剂的形态,能量分散X射线光谱(EDX),X射线衍射(XRD),透射电子显微镜(TEM)和高分辨率透射电子显微镜(HR-TEM)和快速傅里叶变换(FFT)方法。使用循环伏安法(CV),步数计法(CP)计时术(CA)和电化学阻抗光谱(EIS)研究了合成电催化剂在碱性介质中朝硼氢化物氧化的电催化活性。结果表明,Ni @ Pd / C具有最高的电化学活性表面积(ECSA)(164.9米(2)G(-1)),比Ni @ Pt / C高1.69和2.39倍(97.3米(2) G(-1))和Ni @ ru / c(69.1 m(2)g(-1))。此外,Ni @ Pd / C显示出优异的催化活性朝向硼氢化物氧化(29 022Ag(-1)),其为1.32和高于Ni @ Pt / c的8.55倍(22 016 a g(-1))和ni @ Ru / C(3394Ag(-1))催化剂。使用Ni @ Pt / C,Ni @ Pd / C和Ni / C为阳极电催化剂和Pt / C作为阴极电催化剂,用催化剂涂覆的膜(CCM)技术制造膜电极组件(CCM)技术。结果表明,具有Ni @ Pd / C电催化的燃料电池具有最大功率密度(200.78mm cm(-2))。

著录项

  • 来源
    《New Journal of Chemistry》 |2017年第22期|共10页
  • 作者

    Hosseini M. G.; Mahmoodi R.;

  • 作者单位

    Univ Tabriz Dept Phys Chem Electrochem Res Lab Tabriz Iran;

    Univ Tabriz Dept Phys Chem Electrochem Res Lab Tabriz Iran;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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