Влияние строения привитого слоя и структурных параметров носителей на адсорбционные свойства полифторалкилкремнеземов (1105553), страница 27
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Encyclopedia of Surface and Colloid Science. 2006. P. 2854-2875.23.A.B.D. Nandiyanto, S.-G. Kim, F. Iskandar, K. Okuyama. Synthesis of Silica Nanoparticleswith Nanometer-Size Controllable Mesopores and Outer Diameters. // Micropor. Mesopor.Materials. 2009. V. 120.
№ 3. P. 447–453.24.A.B.D. Nandiyanto, F. Iskandar, K. Okuyama. Nano-sized Polymer Particle-FacilitatedPreparation of Mesoporous Silica Particles Using a Spray Method. // Chem. Letters. 2008.V. 37. № 10. P. 1040-1041.25.B.L. Newalkar, N.V. Choudary, P. Kumar. Potential Adsorbent for Light HydrocarbonSeparation: Role of SBA-15 Framework Porosity. // Chem. Mater.
2003. V. 15. P. 1474-1479.26.A.J. Kessman, D.K.P. Huckaby, C.R. Snyder, S.N. Kukureka, D.R. Cairns. Tribology of waterand oil repellent sol–gel coatings for optical applications. // WEAR. 2009. V. 267. P. 614-618.13727.L. Feng, Z. Y. Zhang, Z. H. Mai. A Super-Hydrophobic and Super-Oleophilic Coating MeshFilm for the Separation of Oil and Water.
// Angew. Chem. Int. Ed. 2004. V. 116.P. 2046 2048.28.F. C. Cebeci, Z. Z. Wu, L. Zhai. Nanoporosity-driven superhydrophilicity: A means to createmultifunctional antifogging coatings. // Langmuir. 2006. V. 22. P. 2856-2862.29.T. Sun, L. Feng, X.
J. Gao. Bioinspired Surfaces with Special Wettability. // Acc. Chem. Res.2005. V. 38. P. 644-652.30.R. Helmy, Y. Kazakevich, C. Ni, A.Y. Fadeev. Wetting in Hydrophobic Nanochannels: AChallenge of Classical Capillarity. // J. Am. Chem. Soc. 2005. V. 127. P. 12446-12447.31.M. Kruk, M. Jaroniec. Gas adsorption characterization of ordered organic−inorganicnanocomposite materials. // Chem. Mater.
2001. V. 13. P. 3169-3183.32.Б.В. Романовский, М.И. Онищенко, И.А. Тябликов, Е.Е. Князева, А.В. Яценко.Каталитические свойства Pd-содержащих систем на основе модифицированногоимидазольной ионной жидкостью молекулярного сита SBA-15. // Кинетика и катализ.2013. Т. 54. № 3. С. 368-372.33.M. Ma, R.M. Hill. Superhydrophobic surfaces. // Curr. Opinion Colloid Interface Sci.
2006. V.11. P. 193-202.34.C.T. Kresge, M.E. Leonowicz, W.J. Roth, J.C. Vartuli, J.S. Beck. Ordered mesoporousmolecular sieves synthesized by a liquid-crystal template mechanism. // Nature. 1992. V. 359.P. 710-712.35.J.S. Beck, J.C. Vartuli, W.J. Roth, M.E. Leonowicz, C.T.
Kresge. A new family of mesoporousmolecular sieves prepared with liquid crystal templates. // J. Am. Chem. Soc. 1992. V. 114.P. 10834-10843.36.В.Б. Фенелонов. МММ без обмана, или Новое в биомеханике. // Химия и жизнь. 2001.№11.
С. 8-11.37.A. Sayari. Mesoporous materials. // The Chemistry of Nanostructured Mater. 2003. P. 39-69.38.Б.В. Романовский, Е.В. Макшина. Нанокомпозиты как функциональные материалы. //СОЖ. 2004. Т. 8, №2. С. 50-55.39.P. Selvam, S.K. Bhatia, C.G. Sonwane. Recent Advances in Processing and Characterizationof Periodic Mesoporous MCM-41 Silicate Molecular Sieves. // Ind. Eng. Chem. Res. 2001.V. 40. № 15. P.
3237-3261.40.J. Silvestre-Albero, A. Sepulveda-Escribano, F. Rodriguez-Reinoso. Preparation andcharacterization of zinc containing MCM-41 spheres. // Micropor. Mesopor. Mater. 2008.V. 113. P. 362-369.13841.K. Cassiers, T. Linssen, M. Mathieu, M. Benjelloun. A Detailed Study of Thermal,Hydrothermal, and Mechanical Stabilities of a Wide Range of Surfactant AssembledMesoporous Silicas. // Chem. Mater.
2002. V. 14. P. 2317-2324.42.R. Ryoo, S. Jun. Improvement of Hydrothermal Stability of MCM-41. Using Salt Effectsduring the Crystallization Process. // J. Phys. Chem. 1997. V. 101. P. 317-320.43.J.M. Kim, J.H. Kwak, S. Jun, R. Ryoo. Ion Exchange and Thermal Stability of MCM-41. // J.Phys. Chem. 1995. V. 99. P. 16742-16747.44.K.J. Edler, J.W. White. Preparation dependent stability of pure silica MCM-41.
// J. Mater.Chem. 1999. V. 9. P. 2611-2615.45.D.T. On, S.M.J. Zaidi, S. Kaliaguine. Stability of mesoporous aluminosilicate MCM-41 undervapor treatment acidic and basic conditions. // Micropor. Mesopor. Mater. 1998. V. 22.P. 211-224.46.Y. Bennadja, P. Beaunier, D. Margolese. Fine tuning of the interaction between Pluronicsurfactants and silica walls in SBA-15 nanostructured materials. // Micropor. Mesopor.
Mater.2001. V. 44. P. 147-152.47.A. Nossov, E. Haddad, F. Guenneau, A. Galarneau. Characterization of the Porosity in SBA-15Silicas by Hyperpolarized 129 Xe NMR. // J. Phys. Chem.2003. V. 107. P. 12456-12460.48.K. Miyazawa, S. Inagaki. Control of the microporosity within the pore walls of orderedmesoporous silica SBA-15. // Chem. Commun. 2000. P. 2121-2122.49.A. Galarneau, H.
Cambon, F. Di Renzo, R. Ryoo. Microporosity and Connections betweenPores in SBA-15 Mesostructured Silicas as a Function of the Temperature of Synthesis. //New. J. Chem. 2003. V. 27 P. 73-79.50.A. Galarneau, H. Cambon, F. Di Renzo, F. Fajula. True Microporosity and Surface Area ofMesoporous SBA-15 Silicas as a Function of Synthesis Temperature.
// Langmuir. 2001. V. 17.P. 8328-8335.51.A.M. Silvestre-Albero, E.O. Jardim, E. Bruijn, V. Meynen. Is there any microporosity inordered mesoporous silicas. // Langmuir. 2009. V. 25. P. 939-943.52.Y. Ueno, A. Tate, O. Niwa, H.-S. Zhou, T. Yamada, I. Honma.
High benzene selectivity ofuniform sub-nanometer sized pores of self-ordered mesoporous silicate. // Chem. Commun.2004. V. 6. Р. 746-747.53.R. Ryoo, C.H. Ko, M. Kruk, V. Antochshuk, M.J. Jaroniec. Block-copolymer-templatedordered mesoporous silica: Array of uniform mesopores or mesopore-micropore network. // J.Phys. Chem.
B. 2000. V. 104 P. 11465-11471.13954.J.M. Kim, G.D. Stucky. Synthesis of highly ordered mesoporous silica materials using sodiumsilicate and amphiphilic block copolymers. // Chem. Commun. 2000. P. 1159-1160.55.S.S. Kim, T.R. Pauly, T.J. Pinnavaia. Non-ionic surfactant assembly of ordered, very largepore molecular sieve silicas from water soluble silicates.
// Chem. Commun. 2000.P. 1661-1662.56.S.H. Joo, R. Ryoo, M. Kruk, M. Jaroniec. Evidence for general nature of poreinterconnectivity in 2-dimensional hexagonal mesoporous silicas prepared using blockcopolymer templates. // J. Phys. Chem. B. 2002. V. 106. P. 4640-4646.57.Y. Segura, P. Cool, P. Kustrowski, L. Chmielarz, R. Dziembaj.
Characterization of vanadiumand titanium oxide supported SBA-15. // J. Phys. Chem. B. 2005. V. 109. P. 12071-12079.58.Y.-M. Liu, Y. Cao, N. Yi, W.-L. Feng, W.-L. Dai. Vanadium oxide supported on mesoporousSBA-15 as highly selectivity catalysts in the oxidative dehydrogenation of propane.
// J. Catal.2004. V. 224. P. 417-428.59.K. Zhu, Z. Ma, Y. Zou, W. Zhou, T. Chen, H. He. Mesoporous VOx–SbOx/SBA-15 synthesizedby a two-stage grafting method and its characterization. // Chem. Commun. 2001.P. 2552-2553.60.M.S. Morey, S.
O’Brien, S. Schwarz, G.D. Stucky. Hydrothermal and postsynthesis surfacemodification of cubic, MCM-48, and ultralarge pore SBA-15 mesoporous silica with titanium.// Chem. Mater. 2000. V. 12. P. 898-911.61.F. Chiker, J.Ph. Nogier, F. Launay, J.L. Bonardet. New Ti-SBA mesoporous solidsfunctionnalized under gas phase conditions: characterisation and application to selectiveoxidation of alkenes. // J. Appl. Catal. A Gen.
2003. V. 243. № 2. P. 309-321.62.A. Tuel, L.G. Hubert-Pfalzgraf. Nanometric monodispersed titanium oxide particles onmesoporous silica: synthesis, characterization, and catalytic activity in oxidation reactions inthe liquid phase. // J. Catal. 2003. V. 217. P. 343-353.63.F. Balas, M. Manzano, P. Horcajada, M. Vallet-Regi. Confinement and controlled release ofbisphosphonates on ordered mesoporous silica-based materials. // J.
Am. Chem. Soc. 2006.V. 128. P. 8116-8117.64.F. Qu, G. Zhu, S. Huang, S. Li, J. Sun, D. Zhang, S. Qiu. Controlled release of captopril byregulating the pore size and morphology of ordered mesoporous silica. // Micropor. Mesopor.Mater. 2006. V. 92. P. 1-9.65.A.M. Liu, K.
Hidajat, S. Kawi, D.Y. Zhao. A new class of hybrid mesoporous materials withfunctionalized organic monolayers for selective adsorption of heavy metal ions. // Chem.Commun. 2000. P. 1145-1146.14066.Q. Jiang, Z.Y. Wu, Y.M. Wang, Y. Cao, C.F.
Zhou, J.H. Zhu. Fabrication of photoluminescentZnO/SBA-15 through directly dispersing zinc nitrate into the as-prepared mesoporous silicaoccluded with template. // J. Mater. Chem. 2006. V. 16. P. 1536-1542.67.J. Xi, X. Qiu, X. Ma, M. Cui, J. Yang, X. Tang, W. Zhu, L. Chen. Composite polymerelectrolyte doped with mesoporous silica SBA-15 for lithium polymer battery.
// Solid. State.Ionics. 2005. V. 176. №. 13–14. P. 1249-1260.68.M. Miyahara, A. Vinu, K.Z. Hossain, T. Nakanishi, K. Ariga. Adsorption study of hemeproteins on SBA-15 mesoporous silica with pore-filling models. // Thin Solid Films. 2006.V. 499. P. 13-18.69.X. Ding, G. Briggs, W. Zhou, Q. Chen, L.-M. Peng. In situ growth and characterization ofAg and Cu nanowires. // Nanotechnology. 2006. V. 17.
P. 376-380.70.В. И. Лыгин. Модели "жесткой" и "мягкой" поверхности. Конструированиемикроструктуры поверхности кремнезем. // Российский химический журнал. 2002.Т. 48. № 3. С. 12-18.71.А.В. Киселев. К вопросу структуры гелей кремниевой кислоты. // Коллоидн. Журн.1936. Т. 2. С. 17-25.72.А.Н. Теренин. В сб.: Поверхностные химические соединения и их роль в явленияхадсорбции. М.: Изд-во МГУ. 1957. 114 с.73.A.M.
Varvarin, L.A. Belyakova. Method for determining the concentration of isolated silanolgroups on silica surface with dimethilchlorosilane. // Russ. J. Appl. Chem. 2003. V. 76. №2. P.203-206.74.S.C. Antakli, J. Serpinet. Determination of the concentration of silanol groups by a chemicalreaction with methyllithium and GC measurements of evolned methane.