Coupling of Carbon Dioxide with Epoxides Efficiently Catalyzed by Thioether‐Triphenolate Bimetallic Iron(III) Complexes: Catalyst Structure–Reactivity Relationship and Mechanistic DFT Study
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L. Cavallo | Sai V. C. Vummaleti | Carmine Capacchione | S. Milione | A. Grassi | Antonio Buonerba | F. D. Monica | A. D. Nisi | M. Monari
[1] Liang‐Nian He,et al. Hydrogen bonding-inspired organocatalysts for CO2 fixation with epoxides to cyclic carbonates , 2016 .
[2] J. A. Castro‐Osma,et al. Synthesis of Cyclic Carbonates Catalysed by Chromium and Aluminium Salphen Complexes. , 2016, Chemistry.
[3] Huanfeng Jiang,et al. Lewis acid–base bifunctional aluminum–salen catalysts: synthesis of cyclic carbonates from carbon dioxide and epoxides , 2016 .
[4] Francesco Della Monica,et al. Thioether-triphenolate bimetallic iron(III) complexes as robust and highly efficient catalysts for cycloaddition of carbon dioxide to epoxides. , 2015, Faraday discussions.
[5] M. Cokoja,et al. Synthesis of cyclic carbonates from epoxides and carbon dioxide by using organocatalysts. , 2015, ChemSusChem.
[6] Arjan W. Kleij,et al. Highly Chemoselective Catalytic Coupling of Substituted Oxetanes and Carbon Dioxide. , 2015, Chemistry.
[7] L. Cavallo,et al. Mechanism of the Ru–Allenylidene to Ru–Indenylidene Rearrangement in Ruthenium Precatalysts for Olefin Metathesis , 2015 .
[8] Javier Martínez,et al. Synthesis of Cyclic Carbonates Catalysed by Aluminium Heteroscorpionate Complexes. , 2015, Chemistry.
[9] Y. Minenkov,et al. Cooperative Effect of Monopodal Silica-Supported Niobium Complex Pairs Enhancing Catalytic Cyclic Carbonate Production. , 2015, Journal of the American Chemical Society.
[10] A. Whitwood,et al. Aluminum(salen) Complexes as Catalysts for the Kinetic Resolution of Terminal Epoxides via CO2 Coupling , 2015 .
[11] M. North,et al. Sustainable metal-based catalysts for the synthesis of cyclic carbonates containing five-membered rings , 2015 .
[12] Arjan W. Kleij,et al. Sustainable conversion of carbon dioxide: the advent of organocatalysis , 2015 .
[13] H. Knölker,et al. Iron catalysis in organic synthesis. , 2015, Chemical reviews.
[14] A. Kleij,et al. New iron pyridylamino-bis(phenolate) catalyst for converting CO2 into cyclic carbonates and cross-linked polycarbonates. , 2015, ChemSusChem.
[15] Arjan W. Kleij,et al. Recent advances in the catalytic preparation of cyclic organic carbonates , 2015 .
[16] J. A. Castro‐Osma,et al. Development of a halide-free aluminium-based catalyst for the synthesis of cyclic carbonates from epoxides and carbon dioxide. , 2014, Chemistry.
[17] L. Cavallo,et al. The Right Computational Recipe for Olefin Metathesis with Ru-Based Catalysts: The Whole Mechanism of Ring-Closing Olefin Metathesis. , 2014, Journal of chemical theory and computation.
[18] L. Cavallo,et al. Dynamics of the NbCl5-catalyzed cycloaddition of propylene oxide and CO2 : assessing the dual role of the nucleophilic Co-catalysts. , 2014, Chemistry.
[19] Junseong Lee,et al. Dinuclear Aluminum Complexes as Catalysts for Cycloaddition of CO2 to Epoxides , 2014 .
[20] Fosong Wang,et al. Highly efficient and quantitative synthesis of a cyclic carbonate by iron complex catalysts , 2014 .
[21] Javier Martínez,et al. Synthesis of cyclic carbonates catalysed by aluminium heteroscorpionate complexes , 2014 .
[22] T. Ema,et al. Recent progress in catalytic conversions of carbon dioxide , 2014 .
[23] P. Styring,et al. A single centre aluminium(III) catalyst and TBAB as an ionic organo-catalyst for the homogeneous catalytic synthesis of styrene carbonate , 2014 .
[24] Kayla A. Kitselman,et al. Synthesis of cyclic carbonates from CO2 and epoxides using ionic liquids and related catalysts including choline chloride–metal halide mixtures , 2014 .
[25] B. Moyer,et al. Challenges to achievement of metal sustainability in our high-tech society. , 2014, Chemical Society reviews.
[26] A. Kleij,et al. Highly active aluminium catalysts for the formation of organic carbonates from CO2 and oxiranes. , 2014, Chemistry.
[27] Michele Aresta,et al. Catalysis for the valorization of exhaust carbon: from CO2 to chemicals, materials, and fuels. technological use of CO2. , 2014, Chemical reviews.
[28] E. Dinjus,et al. New cobalt, iron and chromium catalysts based on easy-to-handle N4-chelating ligands for the coupling reaction of epoxides with CO2. , 2014, Dalton transactions.
[29] Jiujun Zhang,et al. A review of catalysts for the electroreduction of carbon dioxide to produce low-carbon fuels. , 2014, Chemical Society reviews.
[30] Arjan W. Kleij,et al. High activity and switchable selectivity in the synthesis of cyclic and polymeric cyclohexene carbonates with iron amino triphenolate catalysts , 2013 .
[31] E. Dinjus,et al. An Efficient Homogeneous Chloro–Aluminum–[N2O2] Catalyst for the Coupling of Epoxides with Carbon Dioxide , 2013 .
[32] Arjan W. Kleij,et al. Stereochemical Divergence in the Formation of Organic Carbonates Derived from Internal Epoxides , 2013 .
[33] Arjan W. Kleij,et al. Catalyst Development in the Context of Ring Expansion–Addition of Carbon Dioxide to Epoxides to Give Organic Carbonates , 2013, Synlett.
[34] E. Dinjus,et al. Synthesis of cyclic carbonates from epoxides and carbon dioxide catalyzed by an easy-to-handle ionic iron(III) complex. , 2013, Dalton transactions.
[35] Arjan W. Kleij,et al. A powerful aluminum catalyst for the synthesis of highly functional organic carbonates. , 2013, Journal of the American Chemical Society.
[36] M. North,et al. Influence of temperature and pressure on cyclic carbonate synthesis catalyzed by bimetallic aluminum complexes and application to overall syn-bis-hydroxylation of alkenes. , 2013, The Journal of organic chemistry.
[37] Pinaki S. Bhadury,et al. Immobilized functional ionic liquids: efficient, green, and reusable catalysts , 2012 .
[38] C. Limberg,et al. Sulfur-linked Phenolates as Ligands for the Syntheses of Low-Nuclearity Iron(III) Complexes , 2012 .
[39] D. Darensbourg,et al. What's new with CO2? Recent advances in its copolymerization with oxiranes , 2012 .
[40] A. Kleij,et al. Reactivity control in iron(III) amino triphenolate complexes: comparison of monomeric and dimeric complexes. , 2012, Inorganic chemistry.
[41] D. Darensbourg,et al. Formation of Cyclic Carbonates from Carbon Dioxide and Epoxides Coupling Reactions Efficiently Catalyzed by Robust, Recyclable One-Component Aluminum-Salen Complexes , 2012 .
[42] Wei-Min Ren,et al. CO2 copolymers from epoxides: catalyst activity, product selectivity, and stereochemistry control. , 2012, Accounts of chemical research.
[43] I. Omae. Recent developments in carbon dioxide utilization for the production of organic chemicals , 2012 .
[44] J. A. Castro‐Osma,et al. Synthesis of cyclic carbonates using monometallic, and helical bimetallic, aluminium complexes , 2012 .
[45] Arjan W. Kleij,et al. An Efficient Iron Catalyst for the Synthesis of Five‐ and Six‐Membered Organic Carbonates under Mild Conditions , 2012 .
[46] D. Darensbourg,et al. Cobalt catalysts for the coupling of CO2 and epoxides to provide polycarbonates and cyclic carbonates. , 2012, Chemical Society reviews.
[47] Michael North,et al. Influence of flue gas on the catalytic activity of an immobilized aluminium(salen) complex for cyclic carbonate synthesis , 2011 .
[48] Liang‐Nian He,et al. CO2 chemistry: task-specific ionic liquids for CO2 capture/activation and subsequent conversion , 2011 .
[49] G. Centi,et al. Carbon dioxide recycling: emerging large-scale technologies with industrial potential. , 2011, ChemSusChem.
[50] B. Rieger,et al. Transformation of carbon dioxide with homogeneous transition-metal catalysts: a molecular solution to a global challenge? , 2011, Angewandte Chemie.
[51] B. Rieger,et al. Umwandlung von Kohlendioxid mit Übergangsmetall‐Homogenkatalysatoren: eine molekulare Lösung für ein globales Problem? , 2011 .
[52] S. Klaus,et al. Recent advances in CO2/epoxide copolymerization—New strategies and cooperative mechanisms , 2011 .
[53] G. Hutchings,et al. Synthesis of glycerol carbonate from glycerol and urea with gold-based catalysts. , 2011, Dalton transactions.
[54] M. North,et al. Bimetallic aluminium(acen) complexes as catalysts for the synthesis of cyclic carbonates from carbon dioxide and epoxides , 2011 .
[55] Chang-Liang Sun,et al. Direct C-H transformation via iron catalysis. , 2011, Chemical reviews.
[56] Charlotte K. Williams,et al. Catalysts for CO2/epoxide copolymerisation. , 2011, Chemical communications.
[57] Arjan W. Kleij,et al. Metall‐Salen‐vermittelte Bildung cyclischer Carbonate durch Cycloaddition von CO2 an Epoxide , 2010 .
[58] Arjan W. Kleij,et al. Salen-complex-mediated formation of cyclic carbonates by cycloaddition of CO2 to epoxides. , 2010, Angewandte Chemie.
[59] D. Darensbourg,et al. Chemistry of carbon dioxide relevant to its utilization: a personal perspective. , 2010, Inorganic chemistry.
[60] Michael North,et al. Synthesis of cyclic carbonates from epoxides and CO2 , 2010 .
[61] M. North,et al. A bimetallic aluminum(salen) complex for the synthesis of 1,3-oxathiolane-2-thiones and 1,3-dithiolane-2-thiones. , 2010, The Journal of organic chemistry.
[62] M. North,et al. Cyclic carbonate synthesis catalysed by bimetallic aluminium-salen complexes. , 2010, Chemistry.
[63] M. North,et al. A gas-phase flow reactor for ethylene carbonate synthesis from waste carbon dioxide. , 2009, Chemistry.
[64] M. North,et al. One-component catalysts for cyclic carbonate synthesis. , 2009, Chemical communications.
[65] M. North,et al. Mechanism of Cyclic Carbonate Synthesis from Epoxides and CO2** , 2009, Angewandte Chemie.
[66] C. Bolm,et al. Iron-catalysed carbon-heteroatom and heteroatom-heteroatom bond forming processes. , 2008, Chemical Society reviews.
[67] D. Truhlar,et al. The M06 suite of density functionals for main group thermochemistry, thermochemical kinetics, noncovalent interactions, excited states, and transition elements: two new functionals and systematic testing of four M06-class functionals and 12 other functionals , 2008 .
[68] M. Aresta,et al. Utilisation of CO2 as a chemical feedstock: opportunities and challenges. , 2007, Dalton transactions.
[69] M. North,et al. Synthesis of Cyclic Carbonates from Atmospheric Pressure Carbon Dioxide Using Exceptionally Active Aluminium(salen) Complexes as Catalysts , 2007 .
[70] Hiroyuki Yasuda,et al. Transformation of carbon dioxide. , 2007, Chemical reviews.
[71] D. Darensbourg,et al. Making plastics from carbon dioxide: salen metal complexes as catalysts for the production of polycarbonates from epoxides and CO2. , 2007, Chemical reviews.
[72] Maria Cristina Burla,et al. SIR2004: an improved tool for crystal structure determination and refinement , 2005 .
[73] Geoffrey W. Coates,et al. Diskrete Metallkatalysatoren zur Copolymerisation von CO2 mit Epoxiden: Entdeckung, Reaktivität, Optimierung, Mechanismus , 2004 .
[74] David R. Moore,et al. Discrete metal-based catalysts for the copolymerization of CO2 and epoxides: discovery, reactivity, optimization, and mechanism. , 2004, Angewandte Chemie.
[75] L. Zani,et al. Iron-catalyzed reactions in organic synthesis. , 2004, Chemical reviews.
[76] Kun Jin,et al. Highly active electrophile–nucleophile catalyst system for the cycloaddition of CO2 to epoxides at ambient temperature , 2004 .
[77] V. Barone,et al. Quantum Calculation of Molecular Energies and Energy Gradients in Solution by a Conductor Solvent Model , 1998 .
[78] Peter Schwerdtfeger,et al. The accuracy of the pseudopotential approximation. II. A comparison of various core sizes for indium pseudopotentials in calculations for spectroscopic constants of InH, InF, and InCl , 1996 .
[79] Jacopo Tomasi,et al. Molecular Interactions in Solution: An Overview of Methods Based on Continuous Distributions of the Solvent , 1994 .
[80] Michael Dolg,et al. Energy‐adjusted pseudopotentials for the actinides. Parameter sets and test calculations for thorium and thorium monoxide , 1994 .
[81] A. Schäfer,et al. Fully optimized contracted Gaussian basis sets of triple zeta valence quality for atoms Li to Kr , 1994 .
[82] Peter Schwerdtfeger,et al. Accuracy of energy-adjusted quasirelativistic ab initio pseudopotentials , 1993 .
[83] Hans W. Horn,et al. Fully optimized contracted Gaussian basis sets for atoms Li to Kr , 1992 .
[84] A. Becke,et al. Density-functional exchange-energy approximation with correct asymptotic behavior. , 1988, Physical review. A, General physics.
[85] J. Perdew,et al. Erratum: Density-functional approximation for the correlation energy of the inhomogeneous electron gas , 1986, Physical review. B, Condensed matter.
[86] J. Perdew,et al. Density-functional approximation for the correlation energy of the inhomogeneous electron gas. , 1986, Physical review. B, Condensed matter.
[87] L. Lindoy,et al. A variable-temperature Faraday magnetic balance , 1972 .
[88] S. Poling,et al. The determination of paramagnetic susceptibility by NMR: A physical chemistry experiment , 1969 .
[89] A. Wold,et al. Faraday Balance for Measuring Magnetic Susceptibility , 1968 .
[90] M. Lamberti,et al. Carbon Dioxide/Epoxide Reactions Catalyzed by Bimetallic Salalen Aluminum Complexes , 2016 .
[91] B. Rieger,et al. Novel iron(III) catalyst for the efficient and selective coupling of carbon dioxide and epoxides to form cyclic carbonates , 2015 .
[92] D. J. Nelson,et al. How phenyl makes a difference : mechanistic insights into the ruthenium(ii)-catalysed isomerisation of allylic alcohols , 2014 .
[93] S. Klaus,et al. A One-Component Iron Catalyst for Cyclic Propylene Carbonate Synthesis , 2011 .
[94] Charlotte K. Williams,et al. A bimetallic iron(III) catalyst for CO2/epoxide coupling. , 2011, Chemical communications.
[95] D. F. Evans. 400. The determination of the paramagnetic susceptibility of substances in solution by nuclear magnetic resonance , 1959 .