English  |  正體中文  |  简体中文  |  Items with full text/Total items : 94286/110023 (86%)
Visitors : 21690405      Online Users : 656
RC Version 6.0 © Powered By DSPACE, MIT. Enhanced by NTU Library IR team.
Scope Tips:
  • please add "double quotation mark" for query phrases to get precise results
  • please goto advance search for comprehansive author search
  • Adv. Search
    HomeLoginUploadHelpAboutAdminister Goto mobile version
    ASIA unversity > 資訊學院 > 光電與通訊學系 > 期刊論文 >  Item 310904400/17136


    Please use this identifier to cite or link to this item: http://asiair.asia.edu.tw/ir/handle/310904400/17136


    Title: Synthesis of highly dispersed platinum/carbon catalyst using cetyltrimethyl ammonium bromide as a dispersant for proton exchange membrane fuel cells
    Authors: 游瑞松;Yu, Ruei-Sung
    Contributors: 光電與通訊學系
    Keywords: Platinum nanocatalyst;Proton exchange membrane fuel cells;Cetyltrimethyl ammonium bromide;Electrochemically active surface area
    Date: 2012-01
    Issue Date: 2012-11-26 02:22:25 (UTC+0)
    Abstract: "Abstract
    The highly dispersed platinum/carbon (Pt/C) catalysts with excellent activity were synthesized using an impregnation method with cetyltrimethyl ammonium bromide (CTAB) as a dispersant. The catalysts were then calcined at 300 °C under high vacuum to remove CTAB. The calcination temperature used was lower than the high temperatures (≧500 °C) typically used for removing surfactants in nitrogen or argon. The high vacuum pressure prevents the aggregation and oxidation of Pt nanoparticles. Transmission electron microscopy results showed that the Pt nanoparticles, which had average sizes of 2.0, 2.3, and 2.7 nm at CTAB concentrations of 1.37 × 10−2, 2.75 × 10−2, and 4.12 × 10−2 M, respectively, were well dispersed on carbon black. Thermogravimetric analyses indicated that the Pt/C catalysts content increased with increasing CTAB concentration. Cyclic voltammetry analyses confirmed that the electrochemically active surface area and long-term stability of the Pt/C catalysts were better than those of commercial 20 wt.% Pt/C catalyst. The Pt/C-4.12 catalyst performed exceptionally well; the power density of a single cell was 40.9% and 45.4% higher than that of a commercial one at operating cell temperatures of 25 and 75 °C, respectively. The results show that Pt/C catalysts synthesized from this method have promising applications in proton exchange membrane fuel cells."
    Relation: JOURNAL OF POWER SOURCES
    Appears in Collections:[光電與通訊學系] 期刊論文

    Files in This Item:

    File Description SizeFormat
    index.html0KbHTML332View/Open


    All items in ASIAIR are protected by copyright, with all rights reserved.


    DSpace Software Copyright © 2002-2004  MIT &  Hewlett-Packard  /   Enhanced by   NTU Library IR team Copyright ©   - Feedback