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Fe改性Mn/CeO2催化剂低温下同时脱硝与脱甲苯实验研究

郝泽榕 封硕 邢玉烨 沈伯雄

郝泽榕, 封硕, 邢玉烨, 沈伯雄. Fe改性Mn/CeO2催化剂低温下同时脱硝与脱甲苯实验研究[J]. 燃料化学学报(中英文), 2023, 51(12): 1866-1878. doi: 10.1016/S1872-5813(23)60358-5
引用本文: 郝泽榕, 封硕, 邢玉烨, 沈伯雄. Fe改性Mn/CeO2催化剂低温下同时脱硝与脱甲苯实验研究[J]. 燃料化学学报(中英文), 2023, 51(12): 1866-1878. doi: 10.1016/S1872-5813(23)60358-5
HAO Ze-rong, FENG Shuo, XING Yu-ye, SHEN Bo-xiong. Experimental study of Fe modified Mn/CeO2 catalyst for simultaneous removal of NO and toluene at low temperature[J]. Journal of Fuel Chemistry and Technology, 2023, 51(12): 1866-1878. doi: 10.1016/S1872-5813(23)60358-5
Citation: HAO Ze-rong, FENG Shuo, XING Yu-ye, SHEN Bo-xiong. Experimental study of Fe modified Mn/CeO2 catalyst for simultaneous removal of NO and toluene at low temperature[J]. Journal of Fuel Chemistry and Technology, 2023, 51(12): 1866-1878. doi: 10.1016/S1872-5813(23)60358-5

Fe改性Mn/CeO2催化剂低温下同时脱硝与脱甲苯实验研究

doi: 10.1016/S1872-5813(23)60358-5
基金项目: 国家自然科学基金(U20A20302),河北省创新群体(E2021202006),天津市重点研发项目(19ZXSZSN00050,19ZXSZSN00070),河北省重点研发项目(20373701D)和河北省重大科技攻关项目(21283701Z)资助
详细信息
    通讯作者:

    E-mail: shenbx@hebut.edu.cn

  • 中图分类号: X701.7

Experimental study of Fe modified Mn/CeO2 catalyst for simultaneous removal of NO and toluene at low temperature

Funds: The project was supported by Joint Funds of the National Natural Science Foundation of China (U20A20302), Innovation Group in Hebei Province (E2021202006), Key R & D Projects in Tianjin (19ZXSZSN00050, 19ZXSZSN00070), Key R & D projects in Hebei Province (20373701D) and Project of Great Transformation of Scientific and Technical Research in Hebei Province (21283701Z).
  • 摘要: 本研究采用浸渍法制备了Fe改性的Mn/CeO2催化剂,并测试了催化剂在低温条件下同时脱硝与脱甲苯的性能。结果表明,Fe5Mn/CeO2催化剂表现出最佳的催化性能,甲苯的转化效率在175 ℃达到90%,NO转化率在95–300 ℃达到90%。通过BET、SEM、XRD、XPS、H2-TPR、NH3-TPD和O2-TPD等表征手段对催化剂的理化性质进行分析。XPS结果表明,Fe5Mn/CeO2催化剂中Ce3 + 和Mn4 + 的含量增加,促进氧空位和不饱和化学键的形成,提供了更多的活性位点,从而有利于在低温下高效脱除NO和甲苯。H2-TPR、NH3-TPD和O2-TPD表征表明,与其他催化剂相比,Fe5Mn/CeO2催化剂具有优异的氧化还原能力、更强的酸性和更好的氧迁移能力。此外,本研究还探究了Fe5Mn/CeO2催化剂上选择性催化还原(NH3-SCR)反应与甲苯催化氧化反应之间的影响。其中,NH3优先吸附活性位点而抑制了甲苯吸附,而NO2的生成促进了甲苯催化氧化反应;甲苯对NH3-SCR反应的抑制作用随着温度的升高而减弱,在100 ℃时,甲苯对NH3-SCR反应的抑制作用消失。超过225 ℃后,甲苯作为还原剂与NO发生反应且促进了NO2的生成,从而对NH3-SCR反应有促进作用。
  • FIG. 2813.  FIG. 2813.

    FIG. 2813.  FIG. 2813.

    图  1  Mn/CeO2和FexMn/CeO2x=4、5、6)催化剂同时进行NH3-SCR反应和甲苯催化氧化反应

    Figure  1  Mn/CeO2 and FexMn/CeO2 (x=4, 5, 6) catalysts for simultaneous NH3-SCR reaction and toluene catalytic oxidation reaction (a): conversion of NO; (b): conversion of toluene

    图  2  (a)Mn/CeO2和(b)Fe5Mn/CeO2催化剂同时脱硝与脱甲苯反应的产物分布

    Figure  2  Product distribution of simultaneous de-nitrification and de-toluene reaction on (a) Mn/CeO2 and (b) Fe5Mn/CeO2 catalysts

    图  3  Mn/CeO2、FexMn/CeO2x=4、5、6)催化剂的(a)N2吸附-脱吸等温曲线和(b)孔径分布

    Figure  3  Mn/CeO2 and FexMn/CeO2 (x=4, 5, 6) catalysts for (a) N2 adsorption/desorption isotherms and (b) pore size distributions

    图  4  (a)Mn/CeO2和(b)Fe5Mn/CeO2催化剂的SEM照片和EDS-mapping照片

    Figure  4  SEM and EDS mapping of (a) Mn/CeO2 and (b) Fe5Mn/CeO2 catalyst

    图  5  Mn/CeO2和FexMn/CeO2x=4、5、6)催化剂的XRD谱图

    Figure  5  XRD patterns of Mn/CeO2 and FexMn/CeO2 (x=4, 5, 6)

    图  6  Mn/CeO2、Fe5Mn/CeO2和Fe5Mn/CeO2(used)催化剂的XPS谱图

    Figure  6  XPS spectra of Mn/CeO2, Fe5Mn/CeO2 and Fe5Mn/CeO2(used)(a): O 1s; (b): Ce 3d; (c): Mn 2p; (d): Fe 2p

    图  7  Mn/CeO2和FexMn/CeO2x=4、5、6)催化剂的H2-TPR谱图

    Figure  7  H2-TPR patterns of Mn/CeO2 and FexMn/CeO2 (x=4, 5, 6)

    图  8  Mn/CeO2和FexMn/CeO2x=5、6)催化剂的NH3-TPD谱图

    Figure  8  NH3-TPD patterns of Mn/CeO2 and FexMn/CeO2 (x=5, 6)

    图  9  Mn/CeO2和Fe5Mn/CeO2催化剂的O2-TPD谱图

    Figure  9  O2-TPD patterns of Mn/CeO2 and Fe5Mn/CeO2

    图  10  水蒸气对Fe5Mn/CeO2催化剂的同时脱硝与脱甲苯活性的影响

    Figure  10  Effect of H2O(g) on the activity of Fe5Mn/CeO2 catalyst for simultaneous denitration and toluene removal

    图  11  氮氧化物还原对甲苯氧化的影响

    Figure  11  Effect of nitrogen oxide reduction on toluene oxidation

    图  12  甲苯对NH3-SCR反应的影响

    Figure  12  Effect of toluene on NH3-SCR reaction

    表  1  Mn/CeO2和FexMn/CeO2x=4、5、6)催化剂的比表面积、孔容积和平均孔径

    Table  1  Specific surface area, pore volume and average pore size of CeO2 and FexMn/CeO2 (x=4, 5, 6)

    CatalystBET surface
    area A /(m2·g−1)
    Pore volume
    v /(cm3·g−1)
    Pore size
    d /nm
    Mn/CeO223.70.0657.9
    Fe4Mn/CeO220.80.0517.6
    Fe5Mn/CeO222.10.0527.2
    Fe6Mn/CeO220.10.0416.4
    下载: 导出CSV

    表  2  催化剂的元素组成

    Table  2  Element composition of catalysts.

    CatalystOα/OβCe4 + /Ce3 + Mn4 + /(Mn3 + + Mn2 + Fe3 + /Fe2 +
    Mn/CeO20.844.260.419
    Fe5Mn/CeO21.054.590.7082.15
    Fe5Mn/CeO2(used)0.866.380.5211.10
    下载: 导出CSV
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  • 收稿日期:  2022-12-25
  • 修回日期:  2023-03-27
  • 录用日期:  2023-03-31
  • 网络出版日期:  2023-04-13
  • 刊出日期:  2023-12-05

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