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Production of hydrogen from methanol steam reforming using CuPd/ZrO_2 catalysts - Influence of the catalytic surface on methanol conversion and CO selectivity

机译:使用Cupd / ZrO_2催化剂从甲醇蒸汽重整产生的氢气产生 - 催化表面对甲醇转化和CO选择性的影响

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摘要

Electricity generation for mobile applications by proton exchange membrane fuel cells (PEMFCs) is typically hindered by the low volumetric energy density of hydrogen. Nevertheless, nearly pure hydrogen can be generated in-situ from methanol steam reforming (MSR), with Cu-based catalysts being the most common MSR catalysts. Cu-based catalysts display high catalytic performance, even at low temperatures (ca. 250 degrees C), but are easily deactivated. On the other hand, Pd-based catalysts are very stable but show poor MSR selectivity, producing high concentrations of CO as by-product. This work studies bimetallic catalysts where Cu was added as a promoter to increase MSR selectivity of Pd. Specifically, the surface composition was tuned by different sequences of Cu and Pd impregnation on a monoclinic ZrO2 support. Both methanol conversion and MSR selectivity were higher for the catalyst with a CuPd-rich surface compared to the catalyst with a Pd-rich surface. Characterization analysis indicate that the higher MSR selectivity results from a strong interaction between the two metals when Pd is impregnated first (likely an alloy). This sequence also resulted in better metallic dispersion on the support, leading to higher methanol conversion. A H-2 production rate of 86.3 mmol h(-1) g(-1) was achieved at low temperature (220 degrees C) for the best performing catalyst. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:通过质子交换膜燃料电池(PEMFC)的移动应用的发电通常受到氢的低体积能密度的阻碍。然而,可以从甲醇蒸汽重整(MSR)原位产生几乎纯的氢,Cu基催化剂是最常见的MSR催化剂。 Cu基催化剂显示出高催化性能,即使在低温下(约250℃),也易于停用。另一方面,基于Pd的催化剂非常稳定,但显示出差的MSR选择性,产生高浓度的CO作为副产物。该工作研究双金属催化剂,其中加入Cu作为启动子以增加Pd的MSR选择性。具体地,通过不同序列的Cu和Pd浸渍在单斜替替替斯基载体上调整表面组合物。与富含PD的表面的催化剂相比,富含浓铜表面的催化剂的甲醇转化和MSR选择性均较高。表征分析表明,当PD首先浸渍(可能是合金)时,较高的MSR选择性是由两个金属之间的强烈相互作用。该序列也导致载体上更好的金属分散体,导致甲醇转化更高。在低温(220℃)下,在低温(220℃)下,最佳性能催化剂的H-2生产率为86.3mmol H(-1)的生产速率。 (c)2020氢能量出版物LLC。 elsevier有限公司出版。保留所有权利。

著录项

  • 来源
    《International journal of hydrogen energy》 |2021年第33期|17490-17499|共10页
  • 作者单位

    Univ Porto Fac Engn LEPABE Lab Proc Engn Environm Biotechnol & Energy Rua Dr Roberto Frias P-4200465 Porto Portugal;

    Univ Porto Fac Engn LEPABE Lab Proc Engn Environm Biotechnol & Energy Rua Dr Roberto Frias P-4200465 Porto Portugal;

    Univ Porto Fac Engn LEPABE Lab Proc Engn Environm Biotechnol & Energy Rua Dr Roberto Frias P-4200465 Porto Portugal;

    Univ Porto Fac Engn LEPABE Lab Proc Engn Environm Biotechnol & Energy Rua Dr Roberto Frias P-4200465 Porto Portugal;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Methanol steam reforming; Palladium; Copper; Catalytic surface; Synthesis conditions; Catalyst design;

    机译:甲醇蒸汽重整;钯;铜;催化表面;合成条件;催化剂设计;
  • 入库时间 2022-08-19 02:22:52

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