活性炭表面含氧官能团对燃煤烟气氮氧化物脱除的影响

许琦, 侯亚芹, 郭倩倩, 黄张根. 活性炭表面含氧官能团对燃煤烟气氮氧化物脱除的影响[J]. 环境化学, 2020, (8): 2105-2111. doi: 10.7524/j.issn.0254-6108.2019060505
引用本文: 许琦, 侯亚芹, 郭倩倩, 黄张根. 活性炭表面含氧官能团对燃煤烟气氮氧化物脱除的影响[J]. 环境化学, 2020, (8): 2105-2111. doi: 10.7524/j.issn.0254-6108.2019060505
XU Qi, HOU Yaqin, GUO Qianqian, HUANG Zhanggen. Effect of oxygen-containing functional groups on the removal of nitrogen oxides from coal-fired flue gas on activated carbon[J]. Environmental Chemistry, 2020, (8): 2105-2111. doi: 10.7524/j.issn.0254-6108.2019060505
Citation: XU Qi, HOU Yaqin, GUO Qianqian, HUANG Zhanggen. Effect of oxygen-containing functional groups on the removal of nitrogen oxides from coal-fired flue gas on activated carbon[J]. Environmental Chemistry, 2020, (8): 2105-2111. doi: 10.7524/j.issn.0254-6108.2019060505

活性炭表面含氧官能团对燃煤烟气氮氧化物脱除的影响

    通讯作者: 黄张根, E-mail: zghuang@sxicc.ac.cn
  • 基金项目:

    国家重点研发计划项目(2017YFC0210203)和山西省自然科学基金青年基金(201701D221058)资助.

Effect of oxygen-containing functional groups on the removal of nitrogen oxides from coal-fired flue gas on activated carbon

    Corresponding author: HUANG Zhanggen, zghuang@sxicc.ac.cn
  • Fund Project: Supported by the National Key Research and Development Program (2017YFC0210203) and the Shanxi Province Science Foundation (201701D221058).
  • 摘要: 采用HNO3、H2SO4及H2O2对煤基活性炭进行氧化改性处理,研究低温(<250℃)下NH3为还原剂的选择催化还原(SCR)NOx的反应性能.通过元素分析、表面积和孔分布、Boehm滴定、TPD-MS、XPS分析对氧化前后活性炭表面物理化学性质进行分析,对表面含氧基团含量进行了定性定量研究.结果表明,与H2SO4及H2O2处理后相比,活性炭经HNO3氧化处理后表面羧基、酸酐和羟基含量明显增加,在考察温度范围内SCR活性明显提高,HNO3是最佳氧化剂.含氧基团含量与SCR活性的关联结果表明,羧基、酸酐和羟基等3种含氧基团对HNO3改性后活性炭样品的SCR活性提高发挥主要作用.
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  • 收稿日期:  2019-06-05

活性炭表面含氧官能团对燃煤烟气氮氧化物脱除的影响

    通讯作者: 黄张根, E-mail: zghuang@sxicc.ac.cn
  • 1. 国电电力发展股份有限公司, 北京, 100101;
  • 2. 中国科学院山西煤炭化学研究所, 煤转化国家重点实验室, 太原, 030001
基金项目:

国家重点研发计划项目(2017YFC0210203)和山西省自然科学基金青年基金(201701D221058)资助.

摘要: 采用HNO3、H2SO4及H2O2对煤基活性炭进行氧化改性处理,研究低温(<250℃)下NH3为还原剂的选择催化还原(SCR)NOx的反应性能.通过元素分析、表面积和孔分布、Boehm滴定、TPD-MS、XPS分析对氧化前后活性炭表面物理化学性质进行分析,对表面含氧基团含量进行了定性定量研究.结果表明,与H2SO4及H2O2处理后相比,活性炭经HNO3氧化处理后表面羧基、酸酐和羟基含量明显增加,在考察温度范围内SCR活性明显提高,HNO3是最佳氧化剂.含氧基团含量与SCR活性的关联结果表明,羧基、酸酐和羟基等3种含氧基团对HNO3改性后活性炭样品的SCR活性提高发挥主要作用.

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