Nanoporous oxidic solids: the confluence of heterogeneous and homogeneous catalysis.
暂无分享,去创建一个
Juan Carlos Hernandez-Garrido | Robert Raja | R. Bell | J. Thomas | R. Raja | J. Hernández‐Garrido | John Meurig Thomas | Robert G Bell
[1] Clare P. Grey,et al. An investigation into the conversion of methanol to hydrocarbons over a SAPO-34 catalyst using magic-angle-spinning NMR and gas chromatography , 1990 .
[3] S. Bordiga,et al. Selective catalysis and nanoscience: an inseparable pair. , 2007, Chemistry.
[4] B. Weckhuysen,et al. Snapshots of a working catalyst: possibilities and limitations of in situ spectroscopy in the field of heterogeneous catalysis. , 2002, Chemical communications.
[5] Robert Raja,et al. The advantages and future potential of single-site heterogeneous catalysts , 2006 .
[6] Cheetham,et al. Open-Framework Inorganic Materials. , 1999, Angewandte Chemie.
[7] P. Gai,et al. Solid-State Defect Mechanism in Vanadyl Pyrophosphate Catalysts: Implications for Selective Oxidation , 1995, Science.
[8] A. Cheetham,et al. On the Nature of Water Bound to a Solid Acid Catalyst , 1996, Science.
[9] John Meurig Thomas,et al. Catalysis: principles, progress, prospects , 2005, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[10] S. French,et al. Computational approaches to the determination of active site structures and reaction mechanisms in heterogeneous catalysts , 2005, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[11] B. Smit,et al. Understanding cage effects in the n-alkane conversion on zeolites , 2006 .
[12] P. Wright. Microporous Framework Solids , 2007 .
[13] A. Dent,et al. Tracing the conversion of aurichalcite to a copper catalyst by combined X-ray absorption and diffraction , 1991, Nature.
[14] T. Kasama,et al. Electron holography for the study of magnetic nanomaterials. , 2008, Accounts of chemical research.
[15] N. Ravasio,et al. The effect of silylation on titanium-containing silica catalysts for the epoxidation of functionalised molecules , 2008 .
[16] Robert Raja,et al. Design of a green one-step catalytic production of e-caprolactam (precursor of nylon-6) , 2005 .
[17] B. Clausen,et al. Application of Combined X-Ray Diffraction and Absorption Techniques for in Situ Catalyst Characterization , 1998 .
[18] T. Vogt,et al. Structural Characterization of the Orthorhombic Phase M1 in MoVNbTeO Propane Ammoxidation Catalyst , 2003 .
[19] Avelino Corma,et al. Attempts to Fill the Gap Between Enzymatic, Homogeneous, and Heterogeneous Catalysis , 2004 .
[20] Gopinathan Sankar,et al. Determining the structure of active sites, transition states and intermediates in heterogeneously catalysed reactions. , 2002, Chemical communications.
[21] C. Catlow,et al. Rational design of a solid acid catalyst for the conversion of methanol to light alkenes: synthesis, structure and performance of DAF-4 , 1996 .
[22] H. Kung,et al. En route to complete design of heterogeneous catalysts , 2005 .
[23] Keith Smith,et al. para-Selective nitration of halogenobenzenes using a nitrogen dioxide–oxygen–zeolite system , 2000 .
[24] John Meurig Thomas. Uniform Heterogeneous Catalysts: The Role of Solid‐State Chemistry in their Development and Design , 1988 .
[25] P. Wright,et al. Formation of hydronium at the Broensted site in SAPO-34 catalysts , 1993 .
[26] N. Rösch,et al. Acetylene cyclotrimerization on supported size-selected Pd-n clusters (1 <= n <= 30): one atom is enough! , 2000 .
[27] K. Kuroda,et al. The preparation of alkyltrimethylammonium-kanemite complexes and their conversion to microporous materials. , 1990 .
[28] John Meurig Thomas. Principles and practice of heterogeneous catalysis , 1996 .
[29] P. Midgley,et al. High-resolution transmission electron microscopy: the ultimate nanoanalytical technique. , 2004, Chemical communications.
[30] H. Freund,et al. A model high surface area alumina-supported palladium catalyst. , 2005, Physical chemistry chemical physics : PCCP.
[31] R. Bell,et al. Preparation, characterisation and performance of encapsulated copper-ruthenium bimetallic catalysts derived from molecular cluster carbonyl precursors , 1998 .
[32] H. Freund,et al. Surface chemistry of catalysis by gold , 2004 .
[33] Ivar M. Dahl,et al. On the Reaction Mechanism for Hydrocarbon Formation from Methanol over SAPO-34 2. Isotopic Labeling Studies of the Co-reaction of Propene and Methanol , 1994 .
[34] P. Midgley,et al. Improved CO oxidation activity in the presence and absence of hydrogen over cluster-derived PtFe/SiO2 catalysts. , 2006, Langmuir : the ACS journal of surfaces and colloids.
[35] D. Vos,et al. Immobilization of homogeneous oxidation catalysts , 2001 .
[36] F. Kleitz,et al. Controlled polymerization in mesoporous silica toward the design of organic-inorganic composite nanoporous materials. , 2005, Journal of the American Chemical Society.
[37] DESIGNING CATALYSTS FOR CLEAN TECHNOLOGY, GREEN CHEMISTRY, AND SUSTAINABLE DEVELOPMENT , 2005 .
[38] Michel Che,et al. Applications of Photoluminescence Techniques to the Characterization of Solid Surfaces in Relation to Adsorption, Catalysis, and Photocatalysis , 2000 .
[39] D. Petersen,et al. The methanol-to-hydrocarbons reaction: insight into the reaction mechanism from [12C]benzene and [13C]methanol coreactions over zeolite H-beta , 2004 .
[40] D. Vos,et al. Chiral Catalyst Immobilization and Recycling: De Vos/Chiral , 2007 .
[41] B. Weckhuysen,et al. In situ synchrotron-based IR microspectroscopy to study catalytic reactions in zeolite crystals. , 2008, Angewandte Chemie.
[42] R. Bell,et al. Molecular sieve catalysts for the regioselective and shape- selective oxyfunctionalization of alkanes in air. , 2001, Accounts of chemical research.
[43] R. V. Santen. Theoretical Heterogeneous Catalysis , 1991 .
[44] J. S. Beck,et al. Ordered mesoporous molecular sieves synthesized by a liquid-crystal template mechanism , 1992, Nature.
[45] P. Edwards,et al. Gold in a metallic divided state--from Faraday to present-day nanoscience. , 2007, Angewandte Chemie.
[46] Steven V Ley,et al. Facile, one-step production of niacin (vitamin B3) and other nitrogen-containing pharmaceutical chemicals with a single-site heterogeneous catalyst. , 2008, Chemistry.
[47] Bert M. Weckhuysen,et al. Determining the active site in a catalytic process: Operando spectroscopy is more than a buzzword , 2003 .
[48] G. Hutchings,et al. Identification of Active Gold Nanoclusters on Iron Oxide Supports for CO Oxidation , 2008, Science.
[49] J. Bäckvall,et al. Ruthenium-Catalyzed Aerobic Oxidation of Alcohols on Zeolite-Encapsulated Cobalt Salophen Catalyst , 2002 .
[50] John Meurig Thomas,et al. MAPO-18 (M Mg, Zn, Co): a new family of catalysts for the conversion of methanol to light olefins , 1994 .
[51] Jacek Klinowski,et al. Systematic enumeration of microporous solids: towards designer catalysts. , 2007, Angewandte Chemie.
[52] Avelino Corma,et al. From Microporous to Mesoporous Molecular Sieve Materials and Their Use in Catalysis. , 1997, Chemical reviews.
[53] J. Klinowski,et al. The Study of Aluminosilicate and Related Catalysts by High-Resolution Solid-State NMR Spectroscopy , 1985 .
[54] J. Thomas. A significant structural advance using STEM. , 2008, Chemphyschem : a European journal of chemical physics and physical chemistry.
[55] P. Midgley,et al. High-performance nanocatalysts for single-step hydrogenations. , 2003, Accounts of chemical research.
[56] F. Rey,et al. Heterogeneous catalysts obtained by grafting metallocene complexes onto mesoporous silica , 1995, Nature.
[57] Brian F. G. Johnson,et al. Selective oxidation with dioxygen by gold nanoparticle catalysts derived from 55-atom clusters , 2008, Nature.
[58] H. Freund,et al. Oxygen storage at the metal/oxide interface of catalyst nanoparticles. , 2005, Angewandte Chemie.
[59] John Meurig Thomas. The chemistry of crystalline sponges , 1994, Nature.
[60] M. Kumada,et al. Asymmetric Cross-coupling of Organozinc Reagents with Alkenyl Bromides Catalyzed by a Chiral Ferrocenylphosphine-Palladium Complex , 1983 .
[61] D. Goodman,et al. Onset of catalytic activity of gold clusters on titania with the appearance of nonmetallic properties , 1998, Science.
[62] A. Zecchina,et al. Diatomic molecular probes for mid-IR studies of zeolites , 1996 .
[63] M. Anpo,et al. Single-site photocatalytic solids for the decomposition of undesirable molecules. , 2006, Chemical communications.
[64] P. Midgley,et al. Nanotomography in the chemical, biological and materials sciences. , 2007, Chemical Society reviews.
[65] H. Grönbeck,et al. Structural and electronic properties of a trimetallic nanoparticle catalyst: Ru5PtSn , 2007 .
[66] J. F. Creemer,et al. Atomic-scale electron microscopy at ambient pressure. , 2008, Ultramicroscopy.
[67] S. Giorgio,et al. Atomic-Resolution Environmental Transmission Electron Microscopy for Probing Gas–Solid Reactions in Heterogeneous Catalysis , 2007 .
[68] John Meurig Thomas. Tales of tortured ecstasy: probing the secrets of solid catalysts , 1995 .
[69] M. Anpo,et al. The Effect of Chemical Etching by HF Solution on the Photocatalytic Activity of Visible Light-responsive TiO2 Thin Films for Solar Water Splitting , 2008 .
[70] Berend Smit,et al. Towards a molecular understanding of shape selectivity , 2008, Nature.
[71] G. Ertl. Reactions at surfaces: from atoms to complexity (Nobel Lecture). , 2008, Angewandte Chemie.
[72] O. Terasaki,et al. Structural elucidation of microporous and mesoporous catalysts and molecular sieves by high-resolution electron microscopy. , 2001, Accounts of chemical research.
[73] Zhao Zhenhua,et al. Synthesis of aromatic ketones by acylation of aryl ethers with carboxylic anhydrides in the presence of zeolite H-β (H-BEA) in the absence of solvent , 1998 .
[74] Michael O'Keeffe,et al. A mesoporous germanium oxide with crystalline pore walls and its chiral derivative , 2005, Nature.
[75] Jacek Klinowski,et al. Hypothetical Zeolitic Frameworks: In Search of Potential Heterogeneous Catalysts , 2008 .
[76] A. Jansen,et al. Enantioselectivity of immobilized Mn-salen complexes: A computational study , 2007 .
[77] Can Li,et al. Chiral catalysis in nanopores of mesoporous materials. , 2007, Chemical communications.
[78] Robert G. Bell,et al. Molecular-sieve catalysts for the selective oxidation of linear alkanes by molecular oxygen , 1999, Nature.
[79] P. Midgley,et al. Bimetallic Ru-Sn nanoparticle catalysts for the solvent-free selective hydrogenation of 1,5,9-cyclododecatriene to cyclododecene. , 2007, Angewandte Chemie.
[80] J. C. Hernández,et al. Structural Surface Investigations of Cerium−Zirconium Mixed Oxide Nanocrystals with Enhanced Reducibility , 2007 .
[81] R. Sheldon. New catalytic methods for selective oxidation , 1983 .
[82] A. Cheetham,et al. The siting, energetics and mobility of saturated hydrocarbons inside zeolitic cages: methane in zeolite Y , 1988, Nature.
[83] C. Lamberti,et al. Structure and nuclearity of active sites in Fe-zeolites: comparison with iron sites in enzymes and homogeneous catalysts. , 2007, Physical chemistry chemical physics : PCCP.
[84] Crossing the Borders Between Homogeneous and Heterogeneous Catalysis: Developing Recoverable and Reusable Catalytic Systems , 2008 .
[85] Can Li. Chiral Synthesis on Catalysts Immobilized in Microporous and Mesoporous Materials , 2004 .
[86] John Meurig Thomas,et al. Electron Microscopy and the Materials Chemistry of Solid Catalysts , 2004 .
[87] Kenneth D. M. Harris,et al. Turning points in solid-state, materials and surface science , 2007 .
[88] Robert Raja,et al. Exploiting nanospace for asymmetric catalysis: confinement of immobilized, single-site chiral catalysts enhances enantioselectivity. , 2008, Accounts of chemical research.
[89] C. Bianchini,et al. Recent Aspects of Asymmetric Catalysis by Immobilized Chiral Metal Catalysts , 2002 .
[90] A. Datye,et al. Atomic-Scale Imaging of Supported Metal Nanocluster Catalysts in the Working State , 2006 .
[91] Robert Raja,et al. Single-site heterogeneous catalysts. , 2005, Angewandte Chemie.
[92] S. Kolboe,et al. On the Reaction Mechanism for Hydrocarbon Formation from Methanol over SAPO-34 , 1996 .
[93] M. Haruta. Gold as a novel catalyst in the 21st century: Preparation, working mechanism and applications , 2004 .
[94] J. Thomas. Heterogeneous catalysis: enigmas, illusions, challenges, realities, and emergent strategies of design. , 2008, The Journal of chemical physics.
[95] One-pot conversion of citronellal into isopulegol epoxide on mesoporous titanium silicate , 2000 .
[96] Alfons Baiker,et al. 2D-mapping of the catalyst structure inside a catalytic microreactor at work: partial oxidation of methane over Rh/Al2O3. , 2006, The journal of physical chemistry. B.
[97] G. Greaves,et al. Probing solid catalysts under operating conditions. , 1994, Science.
[98] D. Blom,et al. Direct imaging of the MoVTeNbO M1 phase using an aberration-corrected high-resolution scanning transmission electron microscope. , 2008, Angewandte Chemie.
[99] Y. Iwasawa,et al. Conceptual Integration of Homogeneous and Heterogeneous Catalyses , 2008 .
[100] YanagisawaTsuneo,et al. The Preparation of Alkyltriinethylaininonium–Kaneinite Complexes and Their Conversion to Microporous Materials , 2006 .
[101] H. Grönbeck,et al. Synthesis, characterization, electronic structure and catalytic performance of bimetallic and trimetallic nanoparticles containing tin. , 2008, Faraday discussions.
[102] Robert Raja,et al. Catalytically active centres in porous oxides: designand performance of highly selective new catalysts , 2001 .
[103] J. Grunwaldt,et al. Distinct spatial changes of the catalyst structure inside a fixed-bed microreactor during the partial oxidation of methane over Rh/Al2O3 , 2007 .
[104] P. Pescarmona,et al. A New, Efficient Route to Titanium-Silsesquioxane Epoxidation Catalysts Developed by Using High-Speed Experimentation Techniques P.P.P. is grateful for a studentship from TUD. , 2001, Angewandte Chemie.
[105] Weiguo Song,et al. The mechanism of methanol to hydrocarbon catalysis. , 2003, Accounts of chemical research.
[106] Robert Raja,et al. Highly efficient one-step conversion of cyclohexane to adipic acid using single-site heterogeneous catalysts. , 2006, Chemical communications.
[107] S. Bromley,et al. Superior performance of a chiral catalyst confined within mesoporous silica , 1999 .
[108] T. Maschmeyer,et al. Metallocene-derived, isolated MoVI active centres on mesoporous silica for the catalytic dehydrogenation of methanol , 1998 .
[109] Thomas,et al. Design, Synthesis, and In Situ Characterization of New Solid Catalysts. , 1999, Angewandte Chemie.
[110] J. F. Haw,et al. Well-defined (supra)molecular structures in zeolite methanol-to-olefin catalysis , 2005 .
[111] D. Goodman,et al. Structure of Molecular-Sized Ru3Sn3 Clusters on a SiO2 Film on Mo(112) , 2008 .
[112] T. Maschmeyer,et al. Constrained chiral catalysts , 1999 .