Design of a hierarchical Fe-ZSM-5@CeO2 catalyst and the enhanced performances for the selective catalytic reduction of NO with NH3
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Wei Li | Sujing Li | Xiaoxiang Wang | He Ma | Liang Chen | Qiliang Cong
[1] G. Zeng,et al. Adsorption behavior and mechanism of Mg/Fe layered double hydroxide with Fe3O4-carbon spheres on the removal of Pb(II) and Cu(II). , 2019, Journal of colloid and interface science.
[2] J. Schwank,et al. Shape dependence and sulfate promotion of CeO2 for selective catalytic reduction of NO with NH3 , 2018, Applied Catalysis B: Environmental.
[3] Kus Hidajat,et al. Silica–Ceria sandwiched Ni core–shell catalyst for low temperature dry reforming of biogas: Coke resistance and mechanistic insights , 2018, Applied Catalysis B: Environmental.
[4] Dianzeng Jia,et al. Low-temperature CO oxidation over CeO2 and CeO2@Co3O4 core–shell microspheres , 2017 .
[5] E. Tronconi,et al. Improvement in activity and alkali resistance of a novel V-Ce(SO4)2/Ti catalyst for selective catalytic reduction of NO with NH3 , 2017 .
[6] Wei Li,et al. Promotional effect of CeO2 on the propene poisoning resistance of HBEA zeolite catalyst for NH3-SCR of NOx , 2017 .
[7] Jixing Liu,et al. Design of MoFe/Beta@CeO2 catalysts with a core−shell structure and their catalytic performances for the selective catalytic reduction of NO with NH3 , 2017 .
[8] P. Sun,et al. The enhanced performance of MnOx catalyst for NH3-SCR reaction by the modification with Eu , 2017 .
[9] Wanhao Cai,et al. Revealing the formation mechanism of insoluble polydopamine by using a simplified model system , 2017 .
[10] F. Qiu,et al. Design and synthesis of core-shell structured meso-Cu-SSZ-13@mesoporous aluminosilicate catalyst for SCR of NOx with NH3: Enhancement of activity, hydrothermal stability and propene poisoning resistance , 2016 .
[11] R. Moos,et al. Formation and Effect of NH4+ Intermediates in NH3–SCR over Fe-ZSM-5 Zeolite Catalysts , 2016 .
[12] Yaping Zhang,et al. Formation and decomposition of NH4HSO4 during selective catalytic reduction of NO with NH3 over V2O5-WO3/TiO2 catalysts , 2016 .
[13] K. Cen,et al. Deactivation mechanism of arsenic and resistance effect of SO42− on commercial catalysts for selective catalytic reduction of NOx with NH3 , 2016 .
[14] E. Walter,et al. Iron Loading Effects in Fe/SSZ-13 NH3-SCR Catalysts: Nature of the Fe Ions and Structure–Function Relationships , 2016 .
[15] Wei Deng,et al. Low temperature catalytic combustion of 1,2-dichlorobenzene over CeO2–TiO2 mixed oxide catalysts , 2016 .
[16] S. Kawi,et al. Progress in Synthesis of Highly Active and Stable Nickel-Based Catalysts for Carbon Dioxide Reforming of Methane. , 2015, ChemSusChem.
[17] Jiwei Zhang,et al. Effect of surface/bulk oxygen vacancies on the structure and electrochemical performance of TiO2 nanoparticles , 2015 .
[18] Wei Li,et al. Inhibitory effect of SO2 on side reactions of NH3-SCR over olivine , 2015 .
[19] Louise Olsson,et al. Chemical deactivation of H-BEA and Fe-BEA as NH3-SCR catalysts - Effect of potassium , 2015 .
[20] Sihui Zhan,et al. Low-temperature selective catalytic reduction of NO with NH3 over ordered mesoporous MnxCo3 − xO4 catalyst , 2015 .
[21] Qiong Liu,et al. Synthesis, activity and hydrophobicity of Fe-ZSM-5@silicalite-1 for NH3-SCR , 2015 .
[22] Zhiming Liu,et al. Novel V2O5–CeO2/TiO2 catalyst with low vanadium loading for the selective catalytic reduction of NOx by NH3 , 2014 .
[23] Zhongbiao Wu,et al. Manganese–niobium mixed oxide catalyst for the selective catalytic reduction of NOx with NH3 at low temperatures , 2014 .
[24] V. Schünemann,et al. Identifying active sites for fast NH3-SCR of NO/NO2 mixtures over Fe-ZSM-5 by operando EPR and UV–vis spectroscopy , 2014 .
[25] B. Pan,et al. Oxygen vacancies confined in ultrathin indium oxide porous sheets for promoted visible-light water splitting. , 2014, Journal of the American Chemical Society.
[26] Liyi Shi,et al. Rational Design of High-Performance DeNOx Catalysts Based on MnxCo3–xO4 Nanocages Derived from Metal–Organic Frameworks , 2014 .
[27] S. Kawi,et al. Yolk–Satellite–Shell Structured Ni–Yolk@Ni@SiO2 Nanocomposite: Superb Catalyst toward Methane CO2 Reforming Reaction , 2014 .
[28] W. Grünert,et al. Oxidation and selective reduction of NO over Fe-ZSM-5 – How related are these reactions? , 2014 .
[29] Lehui Lu,et al. Polydopamine and its derivative materials: synthesis and promising applications in energy, environmental, and biomedical fields. , 2014, Chemical reviews.
[30] K. Cen,et al. Relationship between structure and performance of a novel cerium-niobium binary oxide catalyst for selective catalytic reduction of NO with NH3 , 2013 .
[31] Liyi Shi,et al. Design of meso-TiO2@MnO(x)-CeO(x)/CNTs with a core-shell structure as DeNO(x) catalysts: promotion of activity, stability and SO2-tolerance. , 2013, Nanoscale.
[32] V. Balakotaiah,et al. Experimental and kinetic modeling study of NH3-SCR of NOx on Fe-ZSM-5, Cu-chabazite and combined Fe- and Cu-zeolite monolithic catalysts , 2013 .
[33] Chonglin Song,et al. Structural Characterization and Selective Catalytic Reduction of Nitrogen Oxides with Ammonia: A Comparison between Co/ZSM-5 and Co/SBA-15 , 2012 .
[34] Young-Jin Kim,et al. Mn-Fe/ZSM5 as a low-temperature SCR catalyst to remove NOx from diesel engine exhaust , 2012 .
[35] A. Corma,et al. Cu-SSZ-39, an active and hydrothermally stable catalyst for the selective catalytic reduction of NOx. , 2012, Chemical communications.
[36] Hong He,et al. A superior Ce-W-Ti mixed oxide catalyst for the selective catalytic reduction of NOx with NH3 , 2012 .
[37] Zhenyu Liu,et al. Behaviors of NH4HSO4 in SCR of NO by NH3 over different cokes , 2012 .
[38] L. Fu,et al. Propene poisoning on three typical Fe-zeolites for SCR of NOχ with NH₃: from mechanism study to coating modified architecture. , 2012, Environmental science & technology.
[39] Huijun Wu,et al. In situ DRIFTS study of NO reduction by NH3 over Fe–Ce–Mn/ZSM-5 catalysts , 2011 .
[40] Maofa Ge,et al. CeO2–WO3 Mixed Oxides for the Selective Catalytic Reduction of NOx by NH3 Over a Wide Temperature Range , 2011 .
[41] D. Dunn-Rankin,et al. Ammonium bisulfate formation temperature in a bench-scale single-channel air preheater , 2011 .
[42] Pascal Granger,et al. Catalytic NO(x) abatement systems for mobile sources: from three-way to lean burn after-treatment technologies. , 2011, Chemical reviews.
[43] Jiqing Lu,et al. UV and visible Raman studies of oxygen vacancies in rare-earth-doped ceria. , 2011, Langmuir : the ACS journal of surfaces and colloids.
[44] T. Akita,et al. Synergistic catalysis of Au@Ag core-shell nanoparticles stabilized on metal-organic framework. , 2011, Journal of the American Chemical Society.
[45] Yue Liu,et al. The enhanced performance of ceria with surface sulfation for selective catalytic reduction of NO by NH3 , 2010 .
[46] Hong He,et al. Selective catalytic reduction of NO with NH3 over manganese substituted iron titanate catalyst: Reaction mechanism and H2O/SO2 inhibition mechanism study , 2010 .
[47] Hong He,et al. Effect of manganese substitution on the structure and activity of iron titanate catalyst for the selective catalytic reduction of NO with NH3 , 2009 .
[48] Pio Forzatti,et al. Enhanced NH3 selective catalytic reduction for NOx abatement. , 2009, Angewandte Chemie.
[49] Stewart J. Warrender,et al. Silicoaluminophosphate Molecular Sieves STA-7 and STA-14 and Their Structure-Dependent Catalytic Performance in the Conversion of Methanol to Olefins , 2009 .
[50] G. Somorjai,et al. Thermally stable Pt/mesoporous silica core-shell nanocatalysts for high-temperature reactions. , 2009, Nature materials.
[51] M. Iwasaki,et al. Characterization of Fe/ZSM-5 DeNOx catalysts prepared by different methods: Relationships between active Fe sites and NH3-SCR performance , 2008 .
[52] Shuhua Li,et al. A DFT Study toward Understanding the High Activity of Fe-Exchanged Zeolites for the “Fast” Selective Catalytic Reduction of Nitrogen Oxides with Ammonia , 2008 .
[53] W. Grünert,et al. The role of NO2 in the selective catalytic reduction of nitrogen oxides over Fe-ZSM-5 catalysts : Active sites for the conversion of NO and of NO/NO2 mixtures , 2008 .
[54] M. Twigg. Progress and future challenges in controlling automotive exhaust gas emissions , 2007 .
[55] Zhongmin Liu,et al. Solid-state MAS NMR studies on the hydrothermal stability of the zeolite catalysts for residual oil selective catalytic cracking , 2004 .
[56] M. Kumar,et al. On the nature of different iron sites and their catalytic role in Fe-ZSM-5 DeNOx catalysts: new insights by a combined EPR and UV/VIS spectroscopic approach , 2004 .
[57] R. T. Yang,et al. Characterization and FTIR Studies of MnOx−CeO2 Catalyst for Low-Temperature Selective Catalytic Reduction of NO with NH3 , 2004 .
[58] R. T. Yang,et al. Reaction Mechanism of Selective Catalytic Reduction of NO with NH3 over Fe-ZSM-5 Catalyst , 2002 .
[59] Guido Busca,et al. An FT-IR study of the adsorption and oxidation of N-containing compounds over Fe2O3-TiO2 SCR catalysts , 2001 .
[60] M. Shelef,et al. Quantitative Determination of Isolated Fe3+ Cations in FeHZSM-5 Catalysts by ESR , 2000 .
[61] M. Larrubia,et al. An FT-IR study of the adsorption of urea and ammonia over V2O5–MoO3–TiO2 SCR catalysts , 2000 .
[62] B. Coq,et al. Selective Catalytic Reduction of Nitric Oxide by Ammonia over Cu-FAU Catalysts in Oxygen-Rich Atmosphere , 1999 .
[63] Harvey G. Stenger,et al. Oxidation of sulfur dioxide to sulfur trioxide over supported vanadia catalysts , 1998 .
[64] W. Sachtler,et al. Activity and durability of Fe/ZSM-5 catalysts for lean burn NOx reduction in the presence of water vapor , 1998 .
[65] D. Goldfarb,et al. Studies of Framework Iron in Zeolites by Pulsed ENDOR at 95 GHz , 1996 .
[66] Avelino Corma,et al. Cracking Activity and Hydrothermal Stability of MCM-41 and Its Comparison with Amorphous Silica-Alumina and a USY Zeolite , 1996 .
[67] D. Goldfarb,et al. Characterization of Iron in Zeolites by X-band and Q-Band ESR, Pulsed ESR, and UV-Visible Spectroscopies , 1994 .
[68] R. Howe,et al. In situ FTIR studies of methanol and dimethyl ether in ZSM-5 , 1987 .
[69] Wei Li,et al. Promotional synergistic effect of Cu and Nb doping on a novel Cu/Ti-Nb ternary oxide catalyst for the selective catalytic reduction of NOx with NH3 , 2018 .
[70] Shaomin Liu,et al. Mechanistic investigation of the enhanced NH3-SCR on cobalt-decorated Ce-Ti mixed oxide: In situ FTIR analysis for structure-activity correlation , 2017 .
[71] Yanfang Liu,et al. Surface oxygen vacancy induced photocatalytic performance enhancement of a BiPO4 nanorod , 2014 .
[72] Weiguo Cao,et al. Enhanced catalytic performance of V2O5–WO3/Fe2O3/TiO2 microspheres for selective catalytic reduction of NO by NH3 , 2013 .