One-pot oxydehydration of glycerol to value-added compounds over metal-doped SiW/HZSM-5 catalysts: Effect of metal type and loading
暂无分享,去创建一个
[1] S. Hong,et al. Promotional effect of vanadium on the selective catalytic oxidation of NH3 to N2 over Ce/V/TiO2 catalyst , 2015 .
[2] Zhang Changhua,et al. Gas phase oxidehydration of glycerol to acrylic acid over Mo/V and W/V oxide catalysts , 2014 .
[3] M. D. Soriano,et al. One-pot glycerol oxidehydration to acrylic acid on multifunctional catalysts: Focus on the influence of the reaction parameters in respect to the catalytic performance , 2014 .
[4] Kaori Omata,et al. Direct Oxidative Transformation of Glycerol into Acrylic Acid over Phosphoric Acid-added W–V–Nb Complex Metal Oxide Catalysts , 2014 .
[5] A. Tompos,et al. Combinatorial design and preparation of transition metal doped MoVTe catalysts for oxidation of propane to acrylic acid , 2014 .
[6] S. Pengpanich,et al. Preparation of supported POM catalysts for liquid phase oxydehydration of glycerol to acrylic acid , 2013 .
[7] Bin Ru,et al. Improved Fischer–Tropsch synthesis for gasoline over Ru, Ni promoted Co/HZSM-5 catalysts , 2013 .
[8] S. Loridant,et al. Gas phase dehydration of lactic acid to acrylic acid over alkaline-earth phosphates catalysts , 2013 .
[9] F. Lenrick,et al. Performance of ZrO2-supported Nb- and W-oxide in the gas-phase dehydration of glycerol to acrolein , 2013 .
[10] C. Mota,et al. Oxidative dehydration of glycerol to acrylic acid over vanadium-impregnated zeolite beta , 2013 .
[11] M. D. Soriano,et al. Glycerol oxidehydration into acrolein and acrylic acid over W-V-Nb-O bronzes with hexagonal structure , 2012 .
[12] Sung Su Kim,et al. Systematic mechanism study of the high temperature SCR of NOX by NH3 over a W/TiO2 catalyst , 2012 .
[13] T. Sooknoi,et al. Direct conversion of glycerol to acrylic acid via integrated dehydration–oxidation bed system , 2012 .
[14] Yonghai Feng,et al. Liquid phase dehydration of glycerol to acrolein catalyzed by silicotungstic, phosphotungstic, and phosphomolybdic acids , 2012 .
[15] Jae-Hong Ryu,et al. ZSM-5 Supported Cobalt Catalyst for the Direct Production of Gasoline Range Hydrocarbons by Fischer–Tropsch Synthesis , 2011 .
[16] M. D. Soriano,et al. Tungsten-Vanadium mixed oxides for the oxidehydration of glycerol into acrylic acid , 2011 .
[17] J. Dubois,et al. Catalytic oxidative dehydration of glycerol over a catalyst with iron oxide domains embedded in an iron orthovanadate phase. , 2010, ChemSusChem.
[18] Jean-Luc Dubois,et al. Production of acrolein and acrylic acid through dehydration and oxydehydration of glycerol with mixed oxide catalysts , 2010 .
[19] R. Grasselli,et al. Enhancement of acrylic acid yields in propane and propylene oxidation by selective P Doping of MoV(Nb)TeO-based M1 and M2 catalysts , 2010 .
[20] H. Wan,et al. Influence of H4SiW12O40 loading on hydrocracking activity of non-sulfide Ni-H4SiW12O40/SiO2 catalysts , 2010 .
[21] D. Su,et al. Structure and properties of a Mo oxide catalyst supported on hollow carbon nanofibers in selective propene oxidation , 2010 .
[22] J. Dubois,et al. Catalytic dehydration of glycerol over vanadium phosphate oxides in the presence of molecular oxygen , 2009 .
[23] Dae-Won Park,et al. Synthesis, characterization and catalytic performance of vanadia-doped delaminated zirconia-pillared montmorillonite clay for the selective catalytic oxidation of hydrogen sulfide , 2009 .
[24] A. V. Ramaswamy,et al. Chemical States and Redox Properties of Mn/CeO2−TiO2 Nanocomposites Prepared by Solution Combustion Route , 2008 .
[25] Liping Li,et al. Synthesis of CuO nanorods and their catalytic activity in the thermal decomposition of ammonium perchlorate , 2008 .
[26] G. N. Filho,et al. Effects of niobium addition on ZSM-5 studied by thermal and spectroscopy methods , 2008 .
[27] Q. Xin,et al. Glycerol dehydration to acrolein over activated carbon-supported silicotungstic acids , 2008 .
[28] P. Claus,et al. Reaction kinetics and modelling of the gold catalysed glycerol oxidation , 2007 .
[29] A. Seidel-Morgenstern,et al. Active species on γ-alumina-supported vanadia catalysts : Nature and reducibility , 2007 .
[30] G. Landi,et al. Oxidation of propane and propylene to acrylic acid over vanadyl pyrophosphate , 2005 .
[31] R. Varma,et al. Alternative routes for catalyst preparation: use of ultrasound and microwave irradiation for the preparation of vanadium phosphorus oxide catalyst and their activity for hydrocarbon oxidation , 2003 .
[32] J. Dubois,et al. Mo-V-Te-(Nb)-O mixed metal oxides prepared by hydrothermal synthesis for catalytic selective oxidations of propane and propene to acrylic acid , 2003 .
[33] M. Schmal,et al. Characterization of ceria-coated alumina carrier , 2002 .
[34] B. Orel,et al. Structure of and interactions between P/SiWA Keggin nanocrystals dispersed in an organically modified electrolyte membrane , 2000 .
[35] Ye Wang,et al. Direct conversion of methane to synthesis gas through gas-solid reaction using CeO2-ZrO2 solid solution at moderate temperature , 1999 .
[36] Lanny D. Schmidt,et al. Ignition and extinction in the catalytic oxidation of hydrocarbons over platinum , 1996 .
[37] J. G. Goodwin,et al. Characterization of silica- and alumina-supported vanadia catalysts using temperature programmed reduction , 1994 .
[38] M. N. Vargaftik,et al. Oxidation of Propylene to Acrylic Acid and its Esters Catalysed by Palladium Giant Clusters , 1994 .
[39] A. Kaddouri,et al. Optimization of NiO/MoO3/TeO2 Catalytic system for Direct Oxidation of Propene to Acrylic Acid , 1993 .
[40] M. T. Pope,et al. Heteropoly and Isopoly Oxometalates , 1983 .