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Electrocatalytic properties of hybrid palladium-gold/multi-walled carbon nanotube materials in fuel cell applications

机译:混合钯金/多壁碳纳米管材料在燃料电池中的电催化性能

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摘要

Multi-walled carbon nanotubes (MWCNTs) supported Pd-Au nanoparticles for electrooxidation of formic acid (FA) are prepared and compared with Pd/MWCNTs in this study. The nanocatalysts are prepared by a polyol method, and characterized using X-ray diffraction (XRD), thermogravimetry (TGA), SEM, and field emission transmission electron microscope (FE-TEM). Cyclic voltammetry (CV) is used to examine the catalytic activity towards FA electrooxidation. Controlling the contents of the precursors (PdCl_2 and HAuCl_4·4H_2O), the different weight ratios of Pd-Au can be synthesized to form thernvarious solid solution structures of Pd-Au. TEM image results indicate the average diameter of Pd-Au solid solution particles is about 10-30nm. The results of electrochemical analysis show that the Au (10 wt.%)/[Pd/MWCNTs (1:9)](90wt.%) hybrid catalysts exhibit the highest catalytic activity and better stability than that of Pd/MWCNTs in FA electrooxidation. The promoting of Pd-based catalyst with Au to form solid solution improves the performance of the catalyst in FA electrooxidation. The newly synthesized electrocatalyst is promising for application in direct formic acid fuel cell (DFAFC).
机译:制备了用于甲酸(FA)电氧化的多壁碳纳米管(MWCNTs)负载的Pd-Au纳米颗粒,并将其与Pd / MWCNTs进行了比较。纳米催化剂是通过多元醇法制备的,并使用X射线衍射(XRD),热重分析(TGA),SEM和场发射透射电子显微镜(FE-TEM)进行了表征。循环伏安法(CV)用于检查对FA电氧化的催化活性。控制前驱体(PdCl_2和HAuCl_4·4H_2O)的含量,可以合成不同重量比的Pd-Au,形成各种Pd-Au固溶体结构。 TEM图像结果表明Pd-Au固溶体颗粒的平均直径约为10-30nm。电化学分析结果表明,在FA电氧化中,Au(10 wt。%)/ [Pd / MWCNTs(1:9)](90wt。%)杂化催化剂表现出最高的催化活性和更好的稳定性。 。用Au促进Pd基催化剂形成固溶体改善了FA电氧化中催化剂的性能。新合成的电催化剂有望用于直接甲酸燃料电池(DFAFC)。

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  • 来源
    《Physica status solidi》 |2011年第8期|p.1778-1782|共5页
  • 作者单位

    Department of Materials Engineering, Tatung University, 40, Chungshan N. Rd., 3rd Sec, 104 Taipei, Taiwan;

    rnDepartment of Materials Engineering, Tatung University, 40, Chungshan N. Rd., 3rd Sec, 104 Taipei, Taiwan;

    rnDepartment of Materials Engineering, Tatung University, 40, Chungshan N. Rd., 3rd Sec, 104 Taipei, Taiwan;

    rnDepartment of Materials Engineering, Tatung University, 40, Chungshan N. Rd., 3rd Sec, 104 Taipei, Taiwan;

    rnDepartment of Materials Engineering, Tatung University, 40, Chungshan N. Rd., 3rd Sec, 104 Taipei, Taiwan;

    rnDepartment of Materials Engineering, Tatung University, 40, Chungshan N. Rd., 3rd Sec, 104 Taipei, Taiwan;

    rnInstitute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland;

    rnFaculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warszawa, Poland;

    rnFaculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warszawa, Poland;

    rnInstitute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warszawa, Poland;

    rnInstitute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland;

    rnInstitute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland;

    rnFaculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warszawa, Poland;

    rnInstitute of Chemistry, Academia Sinica, 128 Academia Road Sec. 2, Nankang, Taipei 115, Taiwan;

    rnDepartment of Chemical and Materials Engineering, National Yunlin University of Science and Technology, Douliou 640, Taiwan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    electrocatalysis; formic acid; multi-walled carbon nanotubes; nanoparticles; palladium; gold;

    机译:电催化甲酸多壁碳纳米管;纳米粒子钯;金;
  • 入库时间 2022-08-18 03:12:24

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