Mesoporous materials by templating of liquid crystalline phases
暂无分享,去创建一个
[1] Michael Fröba,et al. Mesoporous Titanosilicate Molecular Sieves Prepared at Ambient Temperature by Electrostatic (S+I-, S+X-I+) and Neutral (S°I°) Assembly Pathways: A Comparison of Physical Properties and Catalytic Activity for Peroxide Oxidations , 1996 .
[2] C. Drummond,et al. Polymerisation of liquid crystalline phases in binary surfactant/water systems , 1996 .
[3] M. Antonietti,et al. Synthesis of sponge-like polymer dispersions via polymerization of bicontinuous microemulsions , 1996 .
[4] T. Pinnavaia,et al. Mesoporous Alumina Molecular Sieves , 1996 .
[5] K. McGrath. Polymerisation of liquid crystalline phases in binary surfactant/water systems , 1996 .
[6] Stephen A. Bagshaw,et al. Mesoporöse Molekularsiebe aus Aluminiumoxid , 1996 .
[7] M. Antonietti,et al. Novel amphiphilic block copolymers by polymer reactions and their use for solubilization of metal salts and metal colloids , 1996 .
[8] C. Drummond,et al. Polymerisation of liquid crystalline phases in binary surfactant/water systems , 1996 .
[9] S. Stupp,et al. Semiconducting superlattices templated by molecular assemblies , 1996, Nature.
[10] G. Stucky,et al. Formation of a Porous Zirconium Oxo Phosphate with a High Surface Area by a Surfactant‐Assisted Synthesis , 1996 .
[11] F. Schüth,et al. Ein poröses Zirconiumoxophosphat sehr hoher Oberfläche durch eine tensidunterstützte Synthese , 1996 .
[13] G. Attard,et al. The True Liquid Crystal Approach to Mesoporous Silica , 1996 .
[14] E. Kaler,et al. Polymerization in nonaqueous microemulsions , 1996 .
[15] C. Ratcliffe,et al. Synthesis and Nuclear Magnetic Resonance Study of Boron-Modified MCM-41 Mesoporous Materials , 1995 .
[16] George S. Attard,et al. Liquid-crystalline phases as templates for the synthesis of mesoporous silica , 1995, Nature.
[17] J. Ying,et al. Synthesis of Hexagonally Packed Mesoporous TiO2 by a Modified Sol–Gel Method , 1995 .
[18] M. Pileni,et al. Synthesis of nanosize metallic and alloyed particles in ordered phases , 1995 .
[19] Stephen A. Bagshaw,et al. Templating of Mesoporous Molecular Sieves by Nonionic Polyethylene Oxide Surfactants , 1995, Science.
[20] D. Fearon,et al. A role in B cell activation for CD22 and the protein tyrosine phosphatase SHP. , 1995, Science.
[21] J. Klinowski,et al. The Role of Surfactant Micelles in the Synthesis of the Mesoporous Molecular Sieve MCM-41 , 1995 .
[22] Q. Huo,et al. Mesostructure Design with Gemini Surfactants: Supercage Formation in a Three-Dimensional Hexagonal Array , 1995, Science.
[23] P. Tanev,et al. A Neutral Templating Route to Mesoporous Molecular Sieves , 1995, Science.
[24] J. Klinowski,et al. Mesopore Molecular Sieve MCM-41 Containing Framework Aluminum , 1995 .
[25] C. Guizard,et al. Sol–gel systems with controlled structure formed in surfactant media , 1995 .
[26] M. Antonietti,et al. Synthesis of Very Highly Ordered Liquid Crystalline Phases by Complex Formation of Polyacrylic Acid with Cationic Surfactants , 1994 .
[27] Q. Huo,et al. Organization of Organic Molecules with Inorganic Molecular Species into Nanocomposite Biphase Arrays , 1994 .
[28] P. Tanev,et al. Titanium-containing mesoporous molecular sieves for catalytic oxidation of aromatic compounds , 1994, Nature.
[29] Pierre M. Petroff,et al. Generalized synthesis of periodic surfactant/inorganic composite materials , 1994, Nature.
[30] Q. Huo,et al. Cooperative Formation of Inorganic-Organic Interfaces in the Synthesis of Silicate Mesostructures , 1993, Science.
[31] P. Behrens. Mesoporous inorganic solids , 1993 .
[32] Bing Yu,et al. Polymerization in non-aqueous lyotropic liquid crystals: Influence of the unsaturation site , 1993 .
[33] J. B. Higgins,et al. A new family of mesoporous molecular sieves prepared with liquid crystal templates , 1992 .
[34] J. S. Beck,et al. Ordered mesoporous molecular sieves synthesized by a liquid-crystal template mechanism , 1992, Nature.
[35] Johan Sjöblom,et al. Amphiphilic association structures and the microemulsion/gel method for ceramics : influence on original phase regions by hydrolysis and condensation of silicon tetraethoxide , 1992 .
[36] R. Partch,et al. Ammonia microemulsions and ammonolysis of silicon tetrachloride , 1991 .
[37] L. McCusker,et al. The triple helix inside the large-pore aluminophosphate molecular sieve VPI-5 , 1991 .
[38] D. Guillon,et al. Polymerization of acrylamide in a swollen lamellar mesophase , 1990 .
[39] Magda A. El-Nokaly. Polymer association structures : microemulsions and liquid crystals , 1989 .
[40] F. Candau,et al. Salt effect on solutions of nonionic surfactants and its influence on the stability of polymerized microemulsions , 1988 .
[41] Mark E. Davis,et al. A molecular sieve with eighteen-membered rings , 1988, Nature.
[42] F. Candau,et al. Application of the cohesive energy ratio concept (CER) to the formation of polymerizable microemulsions , 1988 .
[43] J. Durand,et al. Copolymerization of water-soluble monomers in nonionic bicontinuous microemulsions , 1986 .