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用于NO-SCO的负载型MnO基催化剂:一项实验研究。

Supported MnO-based catalysts for NO-SCO: an experimental study.

作者信息

Qiang Jialin, Li Hui, Hui Shien, Wang Denghui

机构信息

State Key Laboratory of Multiphase Flow in Power Engineering, School of Energy and Power Engineering, Xi'an Jiaotong University, No. 28 Xianning West Rd., Xi'an, 710049, China.

出版信息

Environ Sci Pollut Res Int. 2023 Jan;30(2):2555-2574. doi: 10.1007/s11356-022-22439-5. Epub 2022 Aug 6.

Abstract

In this paper, the NO-SCO (the selective catalytic oxidation of NO) experiments of single-phase MnO, supported MnO/AlO, and the Ce-doped MnCe/Al catalyst system were carried out. The physical and chemical properties of the catalysts were analyzed by XRD, BET, XPS, SEM, O-TPD, and H-TPR. The effects of loading and Ce doping on catalyst activity were studied. The results show that the MnO catalyst exhibited the best activity at 300 ℃, and the NO conversion rate of MnO was 78.2%. The relative content of O adsorbed on the surface of the Mn/Al catalyst decreased obviously by loading MnO on γ-AlO, which led to the decrease in catalyst activity. And the temperature window moved to the high-temperature region. After doping Ce, the dispersion of Mn enhanced, and the relative content of oxygen O adsorbed on the surface increased. The low-temperature activity and fluidity of oxygen in catalysts were improved. Among them, the MnCe/Al catalyst obtained a high specific surface area, good pore structure, large oxygen storage capacity, and excellent surface oxygen species. The corresponding NO conversion rate reached 83.5% at 290 ℃. Then, the effects of operating parameters such as space velocity, NO concentration, and O content on the catalytic activity of MnCe/Al were discussed. The experimental results show that the NO conversion rate of MnCe/Al decreased with increasing NO concentration and space velocity. The O content had a positive effect on the catalytic activity of the catalyst. However, the NO conversion rate tended to be stable due to the saturation of oxygen adsorbed on the catalyst. Through cycling experiments, we found that MnO, Mn/Al, and MnCe/Al catalysts showed good oxidation stabilities for NO oxidation. The evaluation of the water and sulfur resistance of the catalyst shows that the toxicity of SO was reduced by the aqueous atmosphere to a certain extent. Through the structural optimization of the basic model and the calculation of the NO-SCO reaction path, the results show that the NO-SCO reaction on the MnO (110) face followed the ER mechanism more. For the MnO/AlO (110) surface, the LH-MvK hybrid mechanism can greatly reduce the desorption energy barrier of the reaction intermediates, which is more favorable for the NO-SCO reaction. The catalytic mechanisms of the MnCe/Al catalysts require further in-depth research.

摘要

本文开展了单相MnO、负载型MnO/Al₂O₃以及Ce掺杂的MnCe/Al催化剂体系的NO-SCO(NO选择性催化氧化)实验。采用XRD、BET、XPS、SEM、O-TPD和H-TPR对催化剂的物理化学性质进行了分析。研究了负载量和Ce掺杂对催化剂活性的影响。结果表明,MnO催化剂在300℃时表现出最佳活性,MnO的NO转化率为78.2%。在γ-Al₂O₃上负载MnO后,Mn/Al催化剂表面吸附的O的相对含量明显降低,导致催化剂活性下降,且温度窗口向高温区移动。掺杂Ce后,Mn的分散性增强,表面吸附的氧O的相对含量增加,提高了催化剂中氧的低温活性和流动性。其中,MnCe/Al催化剂具有较高的比表面积、良好的孔结构、较大的储氧能力和优异的表面氧物种,在290℃时相应的NO转化率达到83.5%。然后,讨论了空速、NO浓度和O₂含量等操作参数对MnCe/Al催化活性的影响。实验结果表明,MnCe/Al的NO转化率随NO浓度和空速的增加而降低。O₂含量对催化剂的催化活性有积极影响。然而,由于催化剂表面吸附的氧达到饱和,NO转化率趋于稳定。通过循环实验发现,MnO、Mn/Al和MnCe/Al催化剂对NO氧化表现出良好的氧化稳定性。催化剂的耐水和耐硫性评价表明,SO₂的毒性在一定程度上被水汽氛围降低。通过对基本模型的结构优化和NO-SCO反应路径的计算,结果表明MnO(110)面上的NO-SCO反应更遵循ER机理。对于MnO/Al₂O₃(110)表面,LH-MvK混合机理可大大降低反应中间体的脱附能垒,更有利于NO-SCO反应。MnCe/Al催化剂的催化机理需要进一步深入研究。

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