Yang Shijian, Guo Yongfu, Chang Huazhen, et al. Novel effect of SO2 on the SCR reaction over CeO2:Mechanism and significance[J]. Applied Catalysis B:Environmental, 2013, 136-137:19-28.
[7]
Gu Tingting, Jin Ruiben, Liu Yue, et al. Promoting effect of calcium doping on the performances of MnOx/TiO2 catalysts for NO reduction with NH3 at low temperature[J]. Applied Catalysis B:Environmental, 2013, 129:30-38.
[8]
Jiang Haoxi, Zhao Jing, Jiang Dongyu, et al. Hollow MnOx-CeO2 nanospheres prepared by a green route:A novel low-temperature NH3-SCR catalyst[J]. Catalysis Letters, 2014, 144 :325-332.
[9]
Jin R B, Liu Y, Wu Z B, et al. The role of cerium in the improved SO2 tolerance for NO reduction with NH3 over Mn-Ce/TiO2 catalyst at low temperature[J]. Applied Catalysis B:Environmental, 2014, 148-149:582-588.
[10]
Ji Y, Toops T, Crocker M. Effect of ceria on the sulfation and desulfation characteristics of a model lean NOx trap catalyst[J]. Catalysis Letters, 2008, 127(1-2):55-62.
[11]
Qi G S, Ralph T Yang. Performance and kinetics study for low-temperature SCR of NO with NH3 over MnOx-CeO2 catalyst[J]. Journal of Catalysis, 2003, 217:434-441.
[12]
Liu Zhiming, Zhu Junzhi, Li Junhua, et al. Novel Mn-Ce-Ti mixed-oxide catalyst for the selective catalytic reduction of NOx with NH3[J]. ACS Appl. Mater. Interfaces, 2014, 6(16):14500-14508.
[13]
Wu Z B, Jin R B, Wang H Q, et al. Effect of ceria doping on SO2 resistance of Mn/TiO2 for selective catalytic reduction of NO with NH3 at low temperature[J]. Catalysis Communications, 2009, 10(6):935-939.
[14]
Jiang B Q, Wu Z B, Liu Y, et al. DRIFT study of the SO2 effect on low-temperature SCR reaction over Fe-Mn/TiO2[J]. The Journal of Physical Chemistry C, 2010, 116:4961-4965.
[15]
Liu Fudong, He Hong, Zhang Changbin, et al. Selective catalytic reduction of NO with NH3 over iron titanate catalyst:Catalytic performance and characterization[J]. Applied Catalysis B:Environmental, 2010, 96:408-420.
[16]
Kijlstra W S, Biervliet M, Poels E K, et al. Deactivation by SO2 of MnOx/Al2O3 catalysts used for the selective catalytic reduction[J]. Applied Catalysis B:Environmental, 1998, 16:327-337.
[17]
Chang H Z, Ma L, Yang S J, et al. Comparison of preparation methods for ceria catalyst and the effect of surface and bulk sulfates on its activity toward NH3-SCR[J]. Journal of Hazardous Materials, 2013, 262:782-8.
[18]
Park Tae Sung, Jeong Soon Kwan, Hong Sung Ho, et al. Selective catalytic reduction of nitrogen oxides with NH3 over natural manganese ore at low temperature[J]. Ind. Eng. Chem. Res., 2001, 40:4491-4495.
[19]
Xie G Y, Liu Z Y, Zhu Z P, et al. Simultaneous removal of SO2 and NOx from flue gas using a CuO/Al2O3 catalyst sorbent I. Deactivation of SCR activity by SO2 at low temperatures[J]. Journal of Catalysis, 2004, 224(1):36-41.
[20]
Ji Y Y, Todd J Toops, Josh A Pihl, et al. NOx storage and reduction in model lean NOx trap catalysts studied by in situ DRIFTS[J]. Applied Catalysis B:Environmental, 2009, 91(1-2):329-338.
[21]
Peralta M A, Milt V G, Cornaglia L M, et al. Stability of Ba, K/CeO2 catalyst during diesel soot combustion:Effect of temperature, water, and sulfur dioxide[J]. Journal of Catalysis, 2006, 242:118-130.
[22]
Martra G. Lewis acid and base sites at the surface of microcrystalline TiO2 anatase:Relationships between surface morphology and chemical behaviour[J]. Applied Catalysis A:General, 2000(200):275-285.
[23]
Jin R B, Liu Y, Wu Z B, et al. Relationship between SO2 poisoning effects and reaction temperature for selective catalytic reduction of NO over Mn-Ce/TiO2 catalyst[J]. Catalysis Today, 2010, 153(3-4):84-89.
[24]
Sheng Z Y, Hu Y F, Xue J M, et al. SO2 poisoning and regeneration of Mn-Ce/TiO2 catalyst for low temperature NOx reduction with NH3[J]. Journal of Rare Earths, 2012, 30(7):676-682.
[25]
Panagiotis G Smirniotis, Pavani M Sreekanth, Donovan A Pe?a, et al. Manganese oxide catalysts supported on TiO2, Al2O3, and SiO2:A comparison for low-temperature SCR of NO with NH3[J]. Ind. Eng. Chem. Res., 2006, 45(19):6436-6443.
[26]
Costello C K, Yang J H, Law H Y, et al. On the potential role of hydroxyl groups in CO oxidation over Au/A12O3[J]. Applied Catalysis A:General, 2003, 243:15-24.
[27]
Cao F, Xiang J, Su S, et al. The activity and characterization of MnOx-CeO2-ZrO2/γ-Al2O3 catalysts for low temperature selective catalytic reduction of NO with NH3[J]. Chemical Engineering Journal, 2014, 243:347-354.
[28]
Yin C Y, Wei Y J, Wang F W, et al. Introduction of mesopority in zeolite ZSM-5 using resin as templates[J]. Materials Letters, 2013, 98:194-196.
[29]
Zhang D S, Zhang L, Fang C, et al. MnOx-CeOx/CNTs pyridine-thermally prepared via a novel in situ deposition strategy for selective catalytic reduction of NO with NH3[J]. RSC Adv., 2013, 3:8811-8819.
[30]
Carja G, Kameshima Y, Okada K, et al. Mn-Ce/ZSM5 as a new superior catalyst for NO reduction with NH3[J]. Applied Catalysis B:Environmental, 2007, 73:60-64.
Shen B X, Wang Y Y, Wang F M, et al. The effect of Ce-Zr on NH3-SCR activity over MnOx(0.6)/Ce0.5Zr0.5O2 at low temperature[J]. Chemical Engineering Journal, 2014, 236:171-180.
[33]
Zhang X P, Shen B X, Wang K, et al. A contrastive study of the introduction of cobalt as a modifier for active components and supports of catalysts for NH3-SCR[J]. Journal of Industrial and Engineering Chemistry, 2013, 19(4):1272-1279.
[34]
Kang M, Tae Hun Yeon, Jae Eui Yie, et al. Novel MnOx catalysts for NO reduction at low temperature with ammonia[J]. Catalysis Letters, 2006, 106(1-2):77-80.
[35]
Sheng Zhongyi, Hu Yufeng, Xue Jianming, et al. A novel co-precipitation method for preparation of Mn-Ce/TiO2 composites for NOx reduction with NH3 at low temperature[J]. Environmental Technology, 2012, 33(21):2421-2428.
[36]
Yu J, Guo F, Gao S Q, et al. Sulfur poisoning resistant mesoporous Mn-base catalyst for low-temperature SCR of NO with NH3[J]. Applied Catalysis B:Environmental, 2010, 95(1-2):160-168.
[37]
Lu Xining, Song Cunyi, Chang Chein-Chig, et al. Manganese oxides supported on TiO2-graphene nanocomposite catalysts for selective catalytic reduction of NOx with NH3 at low temperature[J]. Ind. Eng. Chem. Res., 2014, 53:11601-11610.
[38]
Qu L, Li C T, Zeng G M, et al. Support modification for improving the performance of MnOx-CeOy/γ-Al2O3 in selective catalytic reduction of NO by NH3[J]. Chemical Engineering Journal, 2014, 42:76-85.
[39]
Li Le, Diao Yongfa, Liu Xin. Ce-Mn mixed oxides supported on glass-fiber for low-temperature selective catalytic reduction of NO with NH3[J]. Journal of Rare Earths, 2014, 32(5):409-415.
[40]
Tang Xiaolong, Hao Jiming, Yi Honghong, et al. Low-temperature SCR of NO with NH3 over AC/C supported manganese-based monolithic catalysts[J]. Catal. Today, 2007, 126:406-411.
[41]
Shen B X, Liu T, Yang X Y, et al. MnOx/Ce0.6Zr0.4O2 catalysts for low-temperature selective catalytic reduction of NOx with NH3[J]. Environmental Engineering Science, 2011, 28(4):291-298.
[42]
Shen B X, Wang F M, Liu T. Homogeneous MnOx-CeO2 pellets prepared by a one-step hydrolysis process for low-temperature NH3-SCR[J]. Powder Technology, 2014, 253:152-157.
[43]
Chang H Z, Li J H, Chen X Y, et al. Improvement of activity and SO2 tolerance of Sn-modified MnOx-CeO2 catalysts for NH3-SCR at low temperatures[J]. Environmental science & technology, 2013, 47(10):5294-301.
[44]
Chang H Z, Li J H, Chen X Y, et al. Effect of Sn on MnOx-CeO2 catalyst for SCR of NOx by ammonia:Enhancement of activity and remarkable resistance to SO2[J]. Catalysis Communications, 2012, 27:54-57.
[45]
Shen B X, Liu T, Zhao N, et al. Iron-doped Mn-Ce/TiO2 catalyst for low temperature selective catalytic reduction of NO with NH3[J]. Journal of Environmental Sciences, 2010, 22(9):1447-1454.
[46]
Peng Y, Li J H, Shi W B, et al. Design strategies for development of SCR catalyst:Improvement of alkali poisoning resistance and novel regeneration method[J]. Environmental science & technology, 2012, 46(22):12623-9.
[47]
Liu Y, Cen W L, Wu Z B, et al. SO2 poisoning structures and the effects on pure and Mn doped CeO2:A first principles investigation[J]. The Journal of Physical Chemistry C, 2012, 116(43):22930-22937.
[48]
Lu Z S, Carsten Müller, Yang Z X, et al. SOx on ceria from adsorbed SO2[J]. The Journal of Chemical Physics, 2011, 134(18):184703.