MgAPSO-34 molecular sieves with various Mg stoichiometries: Synthesis; characterization and catalytic behavior in the direct transformation of chloromethane into light olefins
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Zhongmin Liu | B. Su | Lei Xu | Shuanghe Meng | Yingxu Wei | Ziyu Liu | Dazhi Zhang | Fuxiang Chang | S. Meng | Zhongmin Liu | Ziyu Liu | Zhongmin Liu
[1] Zhongmin Liu,et al. Synthesis, characterization and catalytic performance of metal-incorporated SAPO-34 for chloromethane transformation to light olefins , 2008 .
[2] Zhongmin Liu,et al. Mechanistic elucidation of chloromethane transformation over SAPO-34 using deuterated probe molecule: A FTIR study on the surface evolution of catalyst , 2007 .
[3] K. Lillerud,et al. The methyl halide to hydrocarbon reaction over H-SAPO-34 , 2006 .
[4] Zhongmin Liu,et al. Chloromethane Conversion to Higher Hydrocarbons over Zeolites and SAPOs , 2006 .
[5] Zhongmin Liu,et al. Study of Mn incorporation into SAPO framework:Synthesis; characterization and catalysis in chloromethane conversion to light olefins , 2006 .
[6] Zhongmin Liu,et al. Highly efficient catalytic conversion of chloromethane to light olefins over HSAPO-34 as studied by catalytic testing and in situ FTIR , 2006 .
[7] Zhongmin Liu,et al. New route for light olefins production from chloromethane over HSAPO-34 molecular sieve , 2005 .
[8] Agustín Martínez,et al. The influence of ZSM-5 zeolite composition and crystal size on the in situ conversion of Fischer–Tropsch products over hybrid catalysts , 2005 .
[9] Guodong Li,et al. Investigation into the role of MgO in the synthesis of MAPO-11 large single crystals , 2005 .
[10] J. Dumesic,et al. Role of rare earth cations in Y zeolite for hydrocarbon cracking. , 2005, The journal of physical chemistry. B.
[11] M. Seehra,et al. Conversion of methanol to olefins over cobalt-, manganese- and nickel-incorporated SAPO-34 molecular sieves , 2003 .
[12] O. Swang,et al. A Theoretical Investigation of the Methylation of Methylbenzenes and Alkenes by Halomethanes over Acidic Zeolites , 2003 .
[13] B. Su,et al. Direct catalytic conversion of chloromethane to higher hydrocarbons over a series of ZSM-5 zeolites exchanged with alkali cations , 2003 .
[14] E. Sousa-Aguiar,et al. The influence on selectivity of the aluminum content in the matrix of FCC catalysts , 2003 .
[15] T. Berger,et al. Energy transfer on the MgO surface, monitored by UV-induced H2 chemisorption. , 2003, Journal of the American Chemical Society.
[16] Zhongmin Liu,et al. Crystallization and Si incorporation mechanisms of SAPO-34 , 2002 .
[17] M. A. Zanjanchi,et al. Incorporation of Silicon into AlPO-5 Framework Sites: Higher Thermal Stability and Lower Extra-Framework Aluminum Concentration , 2002 .
[18] B. Su,et al. Monitoring the Brönsted acidity of zeolites by means of in situ FT-IR and catalytic testing using chloromethane as probe molecule , 2002 .
[19] Misook Kang,et al. Methanol conversion on metal-incorporated SAPO-34s (MeAPSO-34s) , 2000 .
[20] A. Corma,et al. The role of pore topology on the behaviour of FCC zeolite additives , 1999 .
[21] Paul T. Barger,et al. The characteristics of SAPO-34 which influence the conversion of methanol to light olefins , 1999 .
[22] Michael Stöcker,et al. Methanol-to-hydrocarbons: catalytic materials and their behavior 1 Dedicated to my wife Wencke Ophau , 1999 .
[23] B. Weckhuysen,et al. Transition Metal Ions in Microporous Crystalline Aluminophosphates: Isomorphous Substitution , 1999 .
[24] M. Hartmann,et al. Transition-metal ions in aluminophosphate and silicoaluminophosphate molecular sieves: location, interaction with adsorbates and catalytic properties. , 1999, Chemical reviews.
[25] T. Inui,et al. Reliable procedure for the synthesis of Ni-SAPO-34 as a highly selective catalyst for methanol to ethylene conversion , 1997 .
[26] B. Su,et al. Characterization of the Brønsted Acid Properties of H(Na)-Beta Zeolite by Infrared Spectroscopy and Thermal Analysis , 1997 .
[27] D. Akolekar. Acidity and catalytic properties of AIPO4-11, SAPO-11, MAPO-11, NiAPO-11, MnAPO-11 and MnAPSO-11 molecular sieves , 1995 .
[28] D. Akporiaye,et al. SYNTHESIS AND CHARACTERIZATION OF THE MAGNESIUM SILICOALUMINOPHOSPHATES MAPSO-43 AND MAPSO-39 , 1995 .
[29] F. Deng,et al. Substitution of Aluminum in Aluminophosphate Molecular Sieve by Magnesium: A Combined NMR and XRD Study , 1995 .
[30] X. Xia,et al. An infrared spectroscopic study of the mechanism of chloromethane conversion to higher hydrocarbons on HZSM5 catalyst , 1995 .
[31] D. Barthomeuf. Topological model for the compared acidity of SAPOs and SiAl zeolites , 1994 .
[32] S. Chilukuri,et al. SMALL-PORE MOLECULAR-SIEVES SAPO-34 AND SAPO-44 WITH CHABAZITE STRUCTURE - A STUDY OF SILICON INCORPORATION , 1994 .
[33] J. Lunsford,et al. The catalytic conversion of methyl chloride to ethylene and propylene over phosphorus-modified Mg-ZSM-5 zeolites , 1993 .
[34] S. Hotevar. Acidity and catalytic activity of McAPSO-34 (Me = Co, Mn, Cr), SAPO-34, and H-ZSM-5 molecular sieves in methanol dehydration , 1992 .
[35] P. Lersch,et al. Conversion of chloromethane over metal-exchanged ZSM-5 to higher hydrocarbons , 1991 .
[36] R. Patton,et al. Solid-state NMR of silicoaluminophosphate molecular sieves and aluminophosphate materials , 1988 .
[37] K. Lammertsma,et al. Electrophilic reactions at single bonds. 20. Selective monohalogenation of methane over supported acidic or platinum metal catalysts and hydrolysis of methyl halides over .gamma.-alumina-supported metal oxide/hydroxide catalysts. A feasible path for the oxidative conversion of methane into methyl al , 1985 .
[38] S. Chilukuri,et al. Small-pore aluminium phosphate molecular sieves with chabazite structure. Incorporation of magnesium in structures -34 and -44 , 1996 .
[39] P. Man,et al. Reversible interaction of NH3 with the framework of template-free zeolite-type SAPO-34 , 1995 .
[40] B. Su,et al. Acidity and location of cations (H+, Na+) in HEMT and NaEMT determined using benzene adsorption , 1993 .
[41] A. Clearfield,et al. Synthesis and properties of MgAPO-5 , 1993 .
[42] B. Su,et al. Quantitative measurement by infrared spectroscopy of the protonic acidity of H-SAPO-37 and HY using benzene as a probe , 1993 .
[43] L. Kustov,et al. INVESTIGATION OF HYDROXYL GROUPS IN CRYSTALLINE SILICOALUMINOPHOSPHATE SAPO-34 BY DIFFUSE REFLECTANCE INFRARED SPECTROSCOPY , 1991 .