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焙烧温度对K改性Ag-Fe/ZnO-ZrO2催化剂结构和CO加氢合成低碳混合醇醚性能的影响

冉磊 华金铭 魏可镁

冉磊, 华金铭, 魏可镁. 焙烧温度对K改性Ag-Fe/ZnO-ZrO2催化剂结构和CO加氢合成低碳混合醇醚性能的影响[J]. 燃料化学学报(中英文), 2015, 43(03): 323-330.
引用本文: 冉磊, 华金铭, 魏可镁. 焙烧温度对K改性Ag-Fe/ZnO-ZrO2催化剂结构和CO加氢合成低碳混合醇醚性能的影响[J]. 燃料化学学报(中英文), 2015, 43(03): 323-330.
RAN Lei, HUA Jin-ming, WEI Ke-mei. Effect of calcination temperature on K modified Ag-Fe/ZnO-ZrO2 catalyst structure and its performance for higher alcohols and DME synthesis from CO hydrogenation[J]. Journal of Fuel Chemistry and Technology, 2015, 43(03): 323-330.
Citation: RAN Lei, HUA Jin-ming, WEI Ke-mei. Effect of calcination temperature on K modified Ag-Fe/ZnO-ZrO2 catalyst structure and its performance for higher alcohols and DME synthesis from CO hydrogenation[J]. Journal of Fuel Chemistry and Technology, 2015, 43(03): 323-330.

焙烧温度对K改性Ag-Fe/ZnO-ZrO2催化剂结构和CO加氢合成低碳混合醇醚性能的影响

基金项目: 福州大学人才引进项目(0460-022474)。
详细信息
    通讯作者:

    华金铭,Tel:0591-83731234;Fax:0591-83738808;E-mail:jmHua@fzu.edu.cn。

  • 中图分类号: O643

Effect of calcination temperature on K modified Ag-Fe/ZnO-ZrO2 catalyst structure and its performance for higher alcohols and DME synthesis from CO hydrogenation

  • 摘要: 采用并流共沉淀法在不同焙烧温度下制备K改性Ag-Fe/ZnO-ZrO2催化剂,考察不同焙烧温度对催化剂CO加氢合成低碳混合醇醚反应性能的影响。通过N2物理吸附(N2-adsorption)、X射线衍射(XRD)、氢气程序升温还原(H2-TPR)、一氧化碳程序升温脱附(CO-TPD)等手段对催化剂进行表征。结果表明,250 ℃焙烧的催化剂,由于焙烧温度较低,表面尚未形成足够多的活性位,未能达到最佳的催化性能;300 ℃焙烧的催化剂,其CO转化率最高、醇醚选择性较高,醇醚时空产率达到最大值。随着焙烧温度进一步升高,CO转化率逐渐降低,醇选择性先降低后增大,二甲醚(DME)选择性逐渐增大,醇醚时空产率逐渐降低。催化剂性能主要与其比表面积、还原性能、所含银铁复合物分散度及CO吸脱附性能有关,即比表面积较大、易于被还原、银铁复合物分散度较高以及较多的CO吸脱附活性位,有利于催化剂CO加氢转化。催化剂表面活性位对CO的非解离吸附强度降低,有利于醇醚产物的生成;而对CO的解离吸附强度增强,则不利于烃类产物的生成。
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  • 收稿日期:  2014-10-21
  • 刊出日期:  2015-03-30

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