Recent advances in dynamic chemical characterization using Temporal Analysis of Products
Tài liệu tham khảo
Yablonsky, 2007, The Y-procedure: how to extract the chemical transformation rate from reaction–diffusion data with no assumption on the kinetic model, Chem Eng Sci, 62, 6754, 10.1016/j.ces.2007.04.050
Redekop, 2013, Momentary Equilibrium (ME) in transient kinetics and its application for estimating the concentration of catalytic sites, Ind Eng Chem Res, 52, 15417, 10.1021/ie400677b
Redekop, 2014, Elucidating complex catalytic mechanisms based on transient pulse-response kinetic data, Chem Eng Sci, 110, 20, 10.1016/j.ces.2013.11.050
Batchu, 2017, Role of intermediates in reaction pathways from ethene to hydrocarbons over H-ZSM-5, Appl Catal A: Gener, 538, 207, 10.1016/j.apcata.2017.03.013
Hemberger, 2017, Understanding the mechanism of catalytic fast pyrolysis by unveiling reactive intermediates in heterogeneous catalysis, Nat Commun, 8, 10.1038/ncomms15946
Perez-Ramirez, 2007, Evolution, achievements, and perspectives of the TAP technique, Catal Today, 121, 160, 10.1016/j.cattod.2007.01.001
Gleaves, 2010, Temporal analysis of products (TAP)—recent advances in technology for kinetic analysis of multi-component catalysts, J Mol Catal A: Chem, 315, 108, 10.1016/j.molcata.2009.06.017
Morgan, 2017, Forty years of temporal analysis of products, Catal Sci Technol, 2416, 10.1039/C7CY00678K
Yablonsky, 2011
Kondratenko, 2007, Micro-kinetic analysis of direct N2O decomposition over steam-activated Fe-silicalite from transient experiments in the TAP reactor, Catal Today, 121, 197, 10.1016/j.cattod.2006.08.066
Schuurman, 2007, Assessment of kinetic modeling procedures of TAP experiments, Catal Today, 121, 187, 10.1016/j.cattod.2006.06.046
Dhainaut, 2017, CH4 dissociation mechanisms on aged three-way natural gas vehicle Pd/Al2O3 catalyst, Top Catal, 60, 295, 10.1007/s11244-016-0614-y
Renème, 2016, Reaction pathways involved in CH4 conversion on Pd/Al2O3 catalysts: TAP as a powerful tool for the elucidation of the effective role of the metal/support interface, Front Chem, 4, 7, 10.3389/fchem.2016.00007
Shekhtman, 1999, Thin-zone TAP-reactor—theory and application, Chem Eng Sci, 54, 4371, 10.1016/S0009-2509(98)00534-X
Shekhtman, 2003, “State defining” experiment in chemical kinetics—primary characterization of catalyst activity in a TAP experiment, Chem Eng Sci, 58, 4843, 10.1016/j.ces.2003.08.005
Yablonsky, 2016, Rate-reactivity model: a new theoretical basis for systematic kinetic characterization of heterogeneous catalysts, Int J Chem Kinet, 48, 304, 10.1002/kin.20988
Redekop, 2011, The Y-Procedure methodology for the interpretation of transient kinetic data: analysis of irreversible adsorption, Chem Eng Sci, 66, 6441, 10.1016/j.ces.2011.08.055
Granger, 2014, Steady-state and unsteady-state kinetic approaches for studying reactions over three-way natural gas vehicle catalysts, Compt Rendus Chim, 17, 656, 10.1016/j.crci.2014.02.002
Renème, 2014, Comparative surface analysis and TAP measurements to probe the NO adsorptive properties of natural gas vehicle Pd–Rh/Al2O3 catalyst, Appl Catal B: Environ, 160, 390, 10.1016/j.apcatb.2014.05.046
Shekhtman, 2008, CO multipulse TAP studies of 2% Pt/CeO2 catalyst: influence of catalyst pretreatment and temperature on the number of active sites observed, J Catal, 253, 303, 10.1016/j.jcat.2007.10.028
Zheng, 2008, Needle in a haystack catalysis-an experimental study using temporal analysis of products (TAP) AIChE 2008 spring national meeting, Am Inst Chem Eng
Granger, 2017, NO adsorption and reaction on aged Pd–Rh natural gas vehicle catalysts: a combined TAP and steady-state kinetic approach, Top Catal, 60, 289, 10.1007/s11244-016-0613-z
Reece, 2017
Filez, 2016, The role of hydrogen during Pt–Ga nanocatalyst formation, Phys Chem Chem Phys, 18, 3234, 10.1039/C5CP07344H
Hartadi, 2016, Competition of CO and H2 for active oxygen species during the preferential CO oxidation (PROX) on Au/TiO2 catalysts, Catalysts, 6, 21, 10.3390/catal6020021
Widmann, 2014, Activation of molecular oxygen and the nature of the active oxygen species for CO oxidation on oxide supported Au catalysts, Acc Chem Res, 10.1021/ar400203e
Widmann, 2014, On the origin of the selectivity in the preferential CO oxidation on Au/TiO2—nature of the active oxygen species for H2 oxidation, J Catal, 317, 272, 10.1016/j.jcat.2014.06.011
Morgan, 2010, TAP studies of CO oxidation over CuMnOX and Au/CuMnOX catalysts, J Catal, 276, 38, 10.1016/j.jcat.2010.08.013
Zheng, 2010, Oxygen and CO adsorption on Au/SiO2 catalysts prepared by magnetron sputtering: the role of oxygen storage, Ind Eng Chem Res, 49, 10428, 10.1021/ie100547f
Schuurman, 1997, A comparison of steady-state and unsteady-state reaction kinetics of n-butane oxidation over VPO catalysts using a TAP-2 reactor system, Catal Today, 33, 25, 10.1016/S0920-5861(96)00115-0
Gleaves, 1993, The reaction mechanism of alkane selective oxidation on vanadyl pyrophosphate catalysts: features gleaned from TAP reactor transient response studies, Catal Today, 16, 69, 10.1016/0920-5861(93)85007-M
Mills, 1999, Redox kinetics of VOPO4 with butane and oxygen using the TAP reactor system, Chem Eng Sci, 54, 3709, 10.1016/S0009-2509(99)00008-1
Gleaves, 1988, Temporal analysis of products (TAP)—a unique catalyst evaluation system with submillisecond time resolution, Catal Rev Sci Eng, 30, 49, 10.1080/01614948808078616
Fushimi, 2005, TAP vacuum pulse-response and normal-pressure studies of propane oxidation over MoVTeNbO oxide catalysts, Ind Eng Chem Res, 44, 6310, 10.1021/ie049162k
Wang, 2018, The influence of CO2 on NO reduction into N2 over reduced ceria-based catalyst, Appl Catal B: Environ, 221, 196, 10.1016/j.apcatb.2017.09.013
Wang, 2017, Fundamental understanding of the Di-Air system (an alternative NOx abatement technology). I: The difference in reductant pre-treatment of ceria, Appl Catal B: Environ
Wang, 2016, Next generation automotive DeNOx catalysts: ceria what else?, ChemCatChem, 8, 102, 10.1002/cctc.201501038
Berger-Karin, 2011, Mechanistic origins of the promoting effect of tiny amounts of Rh on the performance of NiOx/Al2O3 in partial oxidation of methane, J Catal, 280, 116, 10.1016/j.jcat.2011.03.010
Kondratenko, 2010, Mechanism and micro-kinetics of direct N2O decomposition over BaFeAl11O19 hexaaluminate and comparison with Fe-MFI zeolites, Appl Catal B, 99, 66, 10.1016/j.apcatb.2010.05.033
Kondratenko, 2010, Mechanism and micro-kinetics of direct N2O decomposition over BaFeAl11O19 hexaaluminate and comparison with Fe-MFI zeolites, Appl Catal B: Environ, 99, 66, 10.1016/j.apcatb.2010.05.033
Centi, 1988, Mechanistic aspects of maleic anhydride synthesis from C4 hydrocarbons over phosphorus vanadium oxide, Chem Rev, 88, 55, 10.1021/cr00083a003
Ebner, 1988, The activation of oxygen by metal phosophorous oxides—the vanadium phosphorous oxide catalyst
Van der Borght, 2016, Insights into the reaction mechanism of ethanol conversion into hydrocarbons on H-ZSM-5, Angew Chem, 128, 13009, 10.1002/ange.201607230
Goguet, 2011, Time of flight mass spectrometry for quantitative data analysis in fast transient studies using a Temporal Analysis of Products (TAP) reactor, Analyst (Cambridge, U.K.), 136, 155, 10.1039/C0AN00435A
Mills, 2011, Recent advances in coupling analytical techniques to the TAP reactor system, Am Chem Soc
Omojola, 2017, Mechanistic insights into the desorption of methanol and dimethyl ether over ZSM-5 catalysts, Catal Lett, 1
Akram, 2016, Gas phase stabiliser-free production of hydrogen peroxide using supported gold–palladium catalysts, Chem Sci, 7, 5833, 10.1039/C6SC01332E
Keipert, 1998, Determination of the intracrystalline diffusion coefficients of alkanes in H-ZSM-5 zeolite by a transient technique using the temporal-analysis-of-products (TAP) reactor, Chem Eng Sci, 53, 3623, 10.1016/S0009-2509(98)00174-2
Goguet, 2011, Correction for a possible reversible adsorption over an “inert” material, Catal Sci Technol, 1, 84, 10.1039/c0cy00075b
Morgan, 2014, Expansion of pulse responses from temporal analysis of products (TAP) for more accurate data analysis, Catal Sci Technol, 4, 3665, 10.1039/C4CY00543K
Fushimi, 2014, Interrogative kinetics: a new methodology for kinetic mapping of emergent catalytic properties, 227
Beck, 2014, Oxidative coupling of methane—a complex surface/gas phase mechanism with strong impact on the reaction engineering, Catal Today, 228, 212, 10.1016/j.cattod.2013.11.059