• Journal of Inorganic Materials
  • Vol. 39, Issue 1, 81 (2024)
Yanli WANG, Xinyi QIAN, Chunyin SHEN, and Liang ZHAN
Author Affiliations
  • State Key Laboratory of Chemical Engineering, School of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China
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    DOI: 10.15541/jim20230229 Cite this Article
    Yanli WANG, Xinyi QIAN, Chunyin SHEN, Liang ZHAN. Graphene Based Mesoporous Manganese-Cerium Oxides Catalysts: Preparation and Low-temperature Catalytic Reduction of NO[J]. Journal of Inorganic Materials, 2024, 39(1): 81 Copy Citation Text show less
    References

    [1] G QI, R T YANG. Low-temperature selective catalytic reduction of NO with NH3 over iron and manganese oxides supported on titania. Applied Catalysis B: Environmental, 217(2003).

    [2] P G KOMPIO, A BRUCKNER, F HIPLER et al. A new view on the relations between tungsten and vanadium in V2O5-WO3/TiO2catalysts for the selective reduction of NO with NH3. Journal of Catalysis, 237(2012).

    [3] I Y LEE, D W KIM, J B LEE et al. A practical scale evaluation of sulfated V2O5/TiO2 catalyst from metatitanic acid for selective catalytic reduction of NO by NH3. Chemical Engineering Journal, 267(2002).

    [4] M KANG, E D PARK, J M KIM et al. Manganese oxide catalysts for NOx reduction with NH3 at low temperatures. Applied Catalysis A: General, 261(2007).

    [5] G QI, R T YANG. Performance and kinetics study for low- temperature SCR of NO with NH3 over MnOx-CeO2 catalyst. Journal of Catalysis, 434(2003).

    [6] Z B WU, R B JIN, Y LIU et al. Ceria modified MnOx/TiO2 as a superior catalyst for NO reduction with NH3 at low-temperature. Catalysis Communications, 9, 2217(2008).

    [7] Z M LIU, Y YANG, S X ZHANG et al. Selective catalytic reduction of NOx with NH3 over Mn-Ce mixed oxide catalyst at low temperatures. Catalysis Today, 216: 76(2013).

    [8] Yi LI, Y P LI, P F WANG et al. Low-temperature selective catalytic reduction of NOx with NH3 over MnFeOx nanorods. Chemical Engineering Journal, 330: 213(2017).

    [9] S S DENG, Y H LI, R T A et al. Low-temperature selective catalytic reduction of NO with NH3 over manganese and tin oxides supported on titania. Chemical Industry and Engineering Progress, 2403(2013).

    [10] H Z CHANG, J H LI, X Y CHEN et al. Effect of Sn on MnOx-CeO2 catalyst for SCR of NOx by ammonia: Enhancement of activity and remarkable resistance to SO2. Catalysis Communications, 27: 54(2012).

    [11] X J YAO, L CHEN, J CAO et al. Enhancing the deNOx performance of MnOx/CeO2-ZrO2 nanorod catalyst for low- temperature NH3-SCR by TiO2 modification. Chemical Engineering Journal, 369: 46(2019).

    [12] X L TANG, C Z WANG, F Y GAO et al. Effect of hierarchical element doping on the low-temperature activity of manganese- based catalysts for NH3-SCR. Journal of Environmental Chemical Engineering, 104399(2020).

    [13] Y L WANG, X X LI, L ZHAN et al. Effect of SO2 on activated carbon honeycomb supported CeO2-MnOx catalyst for NO removal at low temperature. Industrial & Engineering Chemistry Research, 2274(2015).

    [14] B X SHEN, T LIU. Deactivation of MnOx-CeOx/ACF catalysts for low-temperature NH3-SCR in the presence of SO2. Acta Physico-Chimica Sinica, 3009(2010).

    [15] D S ZHANG, L ZHANG, L Y SHI et al. In situ supported MnOx-CeOx on carbon nanotubes for the low-temperature selective catalytic reduction of NO with NH3. Nanoscale, 1127(2013).

    [16] J Z JIAO, S H LI, B C HUANG. Preparation of manganese oxides supported on graphene catalysts and their activity in low-temperature NH3-SCR. Acta Physico-Chimica Sinica, 1383(2015).

    [17] H M XU, Z QU, C X ZONG et al. MnOx/graphene for the catalytic oxidation and adsorption of elemental mercury. Environmental Science and Technology(2015).

    [18] X N LU, C Y SONG, S H JIA et al. Low-temperature selective catalytic reduction of NOx with NH3 over cerium and manganese oxides supported on TiO2-graphene. Chemical Engineering Journal, 776(2015).

    [19] X XIAO, Z Y SHENG, L YANG et al. Low-temperature selective catalytic reduction of NOx with NH3 over a manganese and cerium oxide/graphene composite prepared by a hydrothermal method. Catalysis Science & Technology, 1507(2016).

    [20] W Q YAO, S B WU, L ZHAN et al. Two-dimensional porous carbon-coated sandwich-like mesoporous SnO2/graphene/mesoporous SnO2 nanosheets towards high-rate and long cycle life lithium-ion batteries. Chemical Engineering Journal, 361: 329(2019).

    [21] S B YANG, L ZHAN, X Y XU et al. Graphene-based porous silica sheets impregnated with polyethyleneimine for superior CO2 capture. Advanced Materials, 2130(2013).

    [22] W Q YAO, Y S CUI, L ZHAN et al. Two-dimensional sandwich-like Ag coated silicon-graphene-silicon nanostructures for superior lithium storage. Applied Surface Science, 614(2017).

    [23] L LV, Y Q SHEN. Selective catalytic reduction with NH3 at low temperature. Journal of Combustion Science and Technology, 103(2011).

    [24] Chang LIU, G GAO, J W SHI et al. MnOx-CeO2 shell-in-shell microspheres for NH3-SCR de-NOx at low temperature. Catalysis Communications, 86: 36(2016).

    [25] Z K KONG, Y LI, Y L WANG et al. Monodispersed MnOx-CeO2 solid solution as superior electrocatalyst for Li2S precipitation and conversion. Chemical Engineering Journal, 392: 123697(2020).

    [26] D Y DENG, N CHEN, X C XIAO et al. Electrochemical performance of CeO2 nanoparticle-decorated graphene oxide as an electrode material for supercapacitor. Ionics, 121(2017).

    [27] W Y YAO, Y LIU, Z B WU. The promoting effect of CeO2@Ce-O-P multi-core@shell structure on SO2 tolerance for selective catalytic reduction of NO with NH3 at low temperature. Applied Surface Science, 442: 156(2018).

    [28] M MACHIDA, M UTO, D KUROGI et al. Solid-gas interaction of nitrogen oxide adsorbed on MnOx-CeO2: a DRIFTS study. Journal of Materials Chemistry, 900(2001).

    [29] X M ZHANG, Y Q DENG, P TIAN et al. Dynamic active sites over binary oxide catalysts: In situ/operando spectroscopic study of low-temperature CO oxidation over MnOx-CeO2 catalysts. Applied Catalysis B: Environmental, 191: 179(2016).

    [30] X C YOU, Z Y SHENG, D Q YU et al. Influence of Mn/Ce ratio on the physicochemical properties and catalytic performance of graphene supported MnOx-CeO2 oxides for NH3-SCR at low temperature. Applied Surface Science, 423: 845(2017).

    [31] Y Z WU, S Q LIU, H Y WANG et al. A novel solvothermal synthesis of Mn3O4/graphene composites for supercapacitors. Electrochimica Acta, 90: 210(2013).

    [32] Y L WANG, Y KANG, M GE et al. Cerium and tin oxides anchored onto reduced graphene oxide for selective catalytic reduction of NO with NH3 at low temperatures. RSC Advances, 36383(2018).

    [33] X N LU, C Y SONG, C C CHANG et al. Manganese oxides supported on TiO2-graphene nanocomposite catalysts for selective catalytic reduction of NOx with NH3 at low temperature. Industrial & Engineering Chemistry Research, 11601(2014).

    [34] X WANG, Y Y ZHENG, Z XU et al. Low-temperature NO reduction with NH3 over Mn-CeOx/CNT catalysts prepared by a liquid-phase method. Catalysis Science & Technology, 1738(2014).

    [35] Z Y FAN, J W SHI, C GAO et al. Rationally designed porous MnOx-FeOx nanoneedles for low-temperature selective catalytic reduction of NOx by NH3. ACS Applied Materials & Interfaces, 16117(2017).

    [36] M T SUN, B C HUANG, J W MA et al. Morphological effects of manganese dioxide on catalytic reactions for low-temperature NH3-SCR. Acta Physico-Chimica Sinica, 1501(2016).

    Yanli WANG, Xinyi QIAN, Chunyin SHEN, Liang ZHAN. Graphene Based Mesoporous Manganese-Cerium Oxides Catalysts: Preparation and Low-temperature Catalytic Reduction of NO[J]. Journal of Inorganic Materials, 2024, 39(1): 81
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