Синтез и свойства Pd-содержащих катализаторов на основе ионных жидкостей, иммобилизованных на мезопористых молекулярных ситах (1105715), страница 16
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– P. 10834-10843.49.Kresge C.T., Leonowicz M.E., Roth W.J., Vartuli J.C., Beck J.S. Ordered mesoporousmolecular sieves synthesized by a crystal template mechanism // Nature. – 1992. – V.359. – P. 710-712.50.Meynen V., Cool P., Vansant E.F. Verified syntheses of mesoporous materials //Micropororous Mesoporous Materials. – 2009. – V. 125. – P. 170-223.51.Corma A.
From Microporous to Mesoporous Molecular Sieve Materials and Their Usein Catalysis // Chemical Reviews. – 1997. – V. 97. – P. 2373-2420.52.Sing S.W., Everett D.H., Haul R.A.W., Moscou L., Pierotti R.A., Rouquérol J.,Siemieniewska T. Reporting Physisorption Data For Gas/Solid Systems with SpecialReference to the Determination of Surface Area and Porosity // Pure and AppliedChemistry. – 1985.
– V. 57. – P. 603-619.10053.Grün M., Unger K.K., Matsumoto A., Tsutsumi K. Novel pathways for the preparationof mesoporous MCM-41 materials: control of porosity and morphology // MicroporousMesopororous Materials. – 1999. – V. 27. – P. 207-216.54.Kruk M., Jaroniec M., Sakamoto Y., Terasaki O., Ryoo R., Ko Ch.H. Determination ofPore Size and Pore Wall Structure of MCM-41 by Using Nitrogen Adsorption,Transmission Electron Microscopy, and X-ray Diffraction // Journal of PhysicalChemistry B. – 2000.
– V. 104. – P. 292-301.55.Kruk M., Jaroniec M., Ryoo R., Kim J.M. Characterization of Highly Ordered MCM-41Silicas Using X-ray Diffraction and Nitrogen Adsorption // Microporous Materials. –1997. – V. 12. – P. 93.56.Chen Y., Shi X., Han B., Qin H., Li Z., Lu Y., Wang J., Kong Y. The CompleteControl for the Nanosize of Spherical MCM-41 // Journal of Nanoscience andNanotechnology. – 2012. –V.
12. – P. 1-11.57.Galarneau A., Cambon H., Di Renzo F., Ryoo R., Choi M., Fajula F. Microporisity andconnection between pores in SBA-15 mesostructured silicas as a function of thetemperature of synthesis // New Journal of Chemistry. – 2003. – V. 27. – P. 73-79.58.Liu S., Zhang H., Meng X., Zhang Y., Ren L., Nawaz F., Liu J., Li Z., Xiao F.-S.Ordered hexagonal mesoporous silica materials (SBA-15) with additional disoderedlarge-mesopour networks formed by gaseous expansion // Microporous MesoporousMaterials. – 2010. – V.
136. – P. 126-131.59.Kleitz F., Schmidt W., Schüth F. Calcination behavior of different surfactant-templatedmesostructured silica materials // Microporous Mesoporous Materials. – 2003. – V. 65.– P. 1-29.60.Margolese D., Melero J.A., Christiansen S.C., Chmelka B.F., Stucky G.D. DirectSyntheses of Ordered SBA-15 Mesoporous Silica Containing Sulfonic Acid Groups //Chemistry of Materials. – 2000.
– V. 12. – P. 2448-2459.61.Lai T.-L., Shu Y.-Y., Lin Y.-C., Chen W.-N., Wang C.-B. Rapid removal of organictemplate from SBA-15 with microwave assisted extraction // Materials Letters. – 2009.– V. 63. – P. 1693-1695.62.Hoffmann F., Cornelius M., Morell J., Fröba M. Silica-based mesoporous organicinorganic hybrid materials // Angewandte Chemie International Edition. – 2006. – V.45. – P. 3216-3251.10163.Huo Q., Margolese D.I., Ciesla U., Feng P., Gier T.E., Sieger P., Leon R., Petroff P.M.,Schüth F.,Stucky G.D. Generalized synthesis of periodic surfactant/inorganiccomposite materials // Nature.
– 1994. – V. 368. – P. 317-321.64.Galo J., Soler-Illia A.-A., Sanchez C., Lebeau B., Patarin J. Chemical strategies todesign textured materials: from microporous and mesoporous oxides to nanonetworksand hierarchical structures // Chemical Reviews. – 2002. – V.102. – P. 4093-4138.65.Lindén M., Agren P., Karlsson S. Solubilization of Oil in Silicate−SurfactantMesostructures // Langmuir. – 2000. – V. 16. – P. 5831-5836.66.Lind A., Andersson J., Karlsson S., Agren P., Bussian P., Amenitsch H., Lindén M.Controlled Solubilization of Toluene by Silicate−Catanionic Surfactant Mesophases asStudied by in Situ and ex Situ XRD // Langmuir.
– 2002. – V. 18. – P. 1380-1385.67.Ulagappan N., Rao C.N.R. Evidence for supramolecular organization of alkane andsurfactant molecules in the process of forming mesoporous silica // ChemicalCommunications. – 1996. – P. 2759-2760.68.Sayari A., Yang Y., Kruk M., Jaroniec M. Expanding the Pore Size of MCM-41 Silicas:Use of Amines as Expanders in Direct Synthesis and Postsynthesis Procedures // Journalof Physical Chemistry B. – 1999. – V. 103. – P.
3651-3658.69.Huo Q., Margolese D.I., Stucky G.D. Surfactant Control of Phases in the Synthesis ofMesoporous Silica-Based Materials // Chemistry of Materials. – 1996. – V. 8. – P.1147-1160.70.Sayari A., Liu P., Kruk M., Jaroniec M. Characterization of Large-Pore MCM-41Molecular Sieves Obtained via Hydrothermal Restructuring // Chemistry of Materials. –1997.
– V. 9. – P. 2499-2506.71.Grün M., Unger K.K., Matsumoto A., Tsutsumi K. Novel pathways for the preparationof mesoporous MCM-41 materials: control of porosity and morphology // MicroporousMesoporous Materials. – 1999. – V. 27. – P. 207-216.72.Ågren P., Lindén M., Rosenholm J.B., Schwarzenbacher R., Kriechbaum M.,Amenitsch H., Laggner P., Blanchard J., Schüth F. Kinetics of Cosurfactant-SurfactantSilicate Phase Behavior.
1. Short-Chain Alcohols // Journal of Physical Chemistry B. –1999. – V. 103. – P. 5943-5948.10273.Anderson M.T., Martin J.E., Odinek J.G., Newcomer P.P. Surfactant-Templated SilicaMesophases Formed in Water:Cosolvent Mixtures // Chemistry of Materials. – 1998. –V. 10. – P. 311-321.74.Szegedi Á., Kónya Z., Méhn D., Solymár E., Pál-Borbély G., Horváth Z.E., Biró L.P.,Kiricsi I..
Spherical mesoporous MCM-41 materials containing transition metals:synthesis and characterization // Applied Catalysis A: General. – 2004. – V. 272. – P.257-266.75.Shio S., Kimura A., Yamaguchi M., Yoshida K., Kuroda K. Morphological Control ofOrdered Mesoporous Silica: Formation of Fine and Rod-Like Mesoporous Powdersfrom Completely Dissolved Aqueous Solutions of Sodium Metasilicate and CationicSurfactants // Chemical Communications. – 1998. – P. 2461-2462.76.Yang H., Vovk G., Coombs N., Sokolov I., Ozin G.
A. Synthesis of Mesoporous SilicaSpheres under Quiescent Aqueous Acidic Conditions // Journal of Materials Chemistry1998, 8, 743-750.77.Zhao D., Feng J., Huo Q., Melosh N., Fredrickson G.H., Chmelka B.F., Stucky G.D.Triblock Copolymer Syntheses of Mesoporous Silica with Periodic 50 to 300 AngstromPores // Science. – 1998. – V. 279. – P. 548-552.78.Zhao D., Huo Q., Feng J., Chmelka B.F., Stucky G.D. Nonionic Triblock and StarDiblock Copolymer and Oligomeric Surfactant Syntheses of Highly Ordered,Hydrothermally Stable, Mesoporous Silica Structures // Journal of American ChemicalSociety. – 1998. – V.
120. – P. 6024-6036.79.Galarneau A., Cambon H., Di Renzo F., Fajula F. True Microporosity and Surface Areaof Mesoporous SBA-15 Silicas as a Function of Synthesis Temperature // Langmuir.– 2001. – V. 17. – P. 8328-8335.80.Galameau A., Cambon H., Martin Th., De Ménorval L.-Ch., Brunel D., Di Renzo F.,Fajula F. SBA-15 versus MCM-41: are they the same materials? // Studies in SurfaceScience and Catalysis.
– 2002. – V. 141. – P. 395-402.81.Park J. C., Lee J. H., Kim P., Yi J. Controlling the pore sizes of SBA-15 mesoporoussilica by the addition of poly(propylene oxide) Original Research Article // Studies inSurface Science and Catalysis. – 2003. – V. 146. – P. 109-112.10382.Cui X., Ahn J.-H., Zin W.-C., Cho W.-J., Ha C.-S.. Polypropylene glycol as a swellingagent for the synthesis of mesoporous silica (SBA-15) by amphiphilic block copolymertemplating // Studies in Surface Science and Catalysis. – 2003.
– V. 146. – P. 117-120.83.Sun J., Zhang H., Ma D., Chen Y., Bao X., Klein-Hoffmann A., Pfänder N., Su D.S.Alkanes-assisted low temperature formation of highly ordered SBA-15 with largecylindrical mesopores // Chemical Communications. – 2005. – P. 5343-5345.84.Wang Y., Noguchi M., Takahashi Y., Ohtsuka Y. Synthesis of SBA-15 with differentpore sizes and the utilization as supports of high loading of cobalt catalysts // CatalysisToday.
–2001. – V. 68. – P. 3-9.85.Chen S.-Y., Chen Y.-T., Lee J.-J., Cheng S. Tuning pore diameter of platelet SBA-15materials with short mesochannels for enzyme adsorption // Journal of MaterialsChemistry. – 2011. – V. 21. – P.5693-5703.86.Cao L., Man T., Kruk M. Synthesis of Ultra-Large-Pore SBA-15 Silica with TwoDimensional Hexagonal Structure Using Triisopropylbenzene As Micelle Expander//Chemistry of Materials. – 2009. – V. 21. – P. 1144-1153.87.Yun J.S., Ihm S.-K. Synthesis of mesoporous SBA-15 having macropores by dualtemplating method // Journal of Physics and Chemistry of Solids. – 2008. – V. 69.
– P.1133-1135.88.Escax V., Delahaye E., Impéror-Clerc M., Beaunier P., Appay M.-D., Davidson A.Modyfiying the porosity of SBA-15 by post-synthesis basic treatments // MicroporousMesoporous Materials. – 2007. – V. 102. – P. 234-241.89.Zhao D., Sun J., Li Q., Stucky G.D. Morphological Control of Highly OrderedMesoporous Silica SBA-15 // Chemistry of Materials. – 2000. – V.
12. – P. 275-27990.Stevens W.J.J., Lebeau K., Mertens M., Van Tendeloo G., Cool P., Vansant E.F.Investigation of the Morphology of the Mesoporous SBA-16 and SBA-15 Materials //Journal of Physical Chemistry B. – 2006. – V. 110.