Magnetic and dendritic catalysts.
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Dong Wang | Jaime Ruiz | D. Astruc | Dong Wang | C. Deraedt | J. Ruiz | Didier Astruc | Christophe Deraedt | Christophe V Deraedt
[1] C. Labrugère,et al. A tris(triazolate) ligand for a highly active and magnetically recoverable palladium catalyst of selective alcohol oxidation using air at atmospheric pressure. , 2015, Chemistry.
[2] D. Astruc,et al. Basic concepts and recent advances in nitrophenol reduction by gold- and other transition metal nanoparticles , 2015 .
[3] Dong Wang,et al. Efficient and magnetically recoverable "click" PEGylated γ-Fe2O3-Pd nanoparticle catalysts for Suzuki-Miyaura, Sonogashira, and Heck reactions with positive dendritic effects. , 2015, Chemistry.
[4] C. Labrugère,et al. Robust, Efficient, and Recyclable Catalysts from the Impregnation of Preformed Dendrimers Containing Palladium Nanoparticles on a Magnetic Support , 2015 .
[5] Yanmei He,et al. Asymmetric Hydrogenation in the Core of Dendrimers , 2014 .
[6] D. Svergun,et al. Hydrophobic Periphery Tails of Polyphenylenepyridyl Dendrons Control Nanoparticle Formation and Catalytic Properties , 2014 .
[7] D. Astruc,et al. Fast‐Growing Field of Magnetically Recyclable Nanocatalysts , 2014 .
[8] D. Astruc,et al. Recyclable catalytic dendrimer nanoreactor for part-per-million Cu(I) catalysis of "click" chemistry in water. , 2014, Journal of the American Chemical Society.
[9] D. Astruc,et al. “Click” Dendrimer‐Stabilized Palladium Nanoparticles as a Green Catalyst Down to Parts per Million for Efficient CC Cross‐Coupling Reactions and Reduction of 4‐Nitrophenol , 2014 .
[10] Na Li,et al. Gold nanoparticles as electron reservoir redox catalysts for 4-nitrophenol reduction: a strong stereoelectronic ligand influence. , 2014, Chemical communications.
[11] Na Li,et al. "Click" synthesis of nona-PEG-branched triazole dendrimers and stabilization of gold nanoparticles that efficiently catalyze p-nitrophenol reduction. , 2014, Inorganic chemistry.
[12] D. Morgan,et al. Magnetically Recoverable Catalysts Based on Polyphenylenepyridyl Dendrons and Dendrimers , 2014 .
[13] L. Rossi,et al. Magnetic nanomaterials in catalysis: advanced catalysts for magnetic separation and beyond , 2014 .
[14] D. Astruc,et al. Magnetically Recoverable Ruthenium Catalysts in Organic Synthesis , 2014, Molecules.
[15] S. Moya,et al. A highly active and magnetically recoverable tris(triazolyl)-Cu(I) catalyst for alkyne-azide cycloaddition reactions. , 2014, Chemistry.
[16] R. Meijboom,et al. Dendrimer-templated Pd nanoparticles and Pd nanoparticles synthesized by reverse microemulsions as efficient nanocatalysts for the Heck reaction: A comparative study. , 2014, Journal of colloid and interface science.
[17] Oliver Reiser,et al. Polymer- and dendrimer-coated magnetic nanoparticles as versatile supports for catalysts, scavengers, and reagents. , 2014, Accounts of chemical research.
[18] A. Nan,et al. Magnetic nanoparticle-supported organocatalysts – an efficient way of recycling and reuse , 2014 .
[19] D. Astruc,et al. A Recyclable Ruthenium(II) Complex Supported on Magnetic Nanoparticles: A Regioselective Catalyst for Alkyne—Azide Cycloaddition. , 2013 .
[20] D. Astruc,et al. "Click" dendrimers as efficient nanoreactors in aqueous solvent: Pd nanoparticle stabilization for sub-ppm Pd catalysis of Suzuki-Miyaura reactions of aryl bromides. , 2013, Chemical communications.
[21] D. Astruc,et al. Dendritic catalysis—Basic concepts and recent trends , 2013 .
[22] Jaime Ruiz,et al. A recyclable ruthenium(II) complex supported on magnetic nanoparticles: a regioselective catalyst for alkyne-azide cycloaddition. , 2013, Chemical communications.
[23] F. Zaera. Nanostructured Materials for Applications in Heterogeneous Catalysis , 2013 .
[24] Yu Zhang,et al. Homogeneous Recyclable Catalysts Based on Metal Nanoparticles for Organic Synthesis , 2013 .
[25] R. Varma,et al. Nano-magnetite (Fe3O4) as a support for recyclable catalysts in the development of sustainable methodologies. , 2013, Chemical Society reviews.
[26] D. Denux,et al. The Clicked Pyridyl‐Triazole Ligand: From Homogeneous to Robust, Recyclable Heterogeneous Mono‐ and Polymetallic Palladium Catalysts for Efficient Suzuki–Miyaura, Sonogashira, and Heck Reactions , 2013 .
[27] A. Pourjavadi,et al. Magnetic nanoparticles coated by acidic functionalized poly(amidoamine) dendrimer: Effective acidic organocatalyst , 2012 .
[28] Amalraj John,et al. Dendritic Catalysis in Asymmetric Synthesis , 2012 .
[29] Wenli Zhang,et al. Magnetic nanoparticle supported catalytic Cu(II)–poly(amindoamine) complexes for aerobic oxidative polymerization to form poly(2,6-dimethyl-1,4-phenylene oxide) in water , 2012 .
[30] D. Astruc. Electron-transfer processes in dendrimers and their implication in biology, catalysis, sensing and nanotechnology. , 2012, Nature chemistry.
[31] Forrest M Kievit,et al. Surface engineering of iron oxide nanoparticles for targeted cancer therapy. , 2011, Accounts of chemical research.
[32] A. Caminade,et al. Dendrimers : towards catalytic, material and biomedical uses , 2011 .
[33] Emily V. Carino,et al. Dendrimer-encapsulated nanoparticles: New synthetic and characterization methods and catalytic applications , 2011 .
[34] L. Bronstein,et al. Dendrimers as encapsulating, stabilizing, or directing agents for inorganic nanoparticles. , 2011, Chemical reviews.
[35] M. Şenel,et al. Fabrication and characterization of dendrimer-encapsulated monometallic Co nanoparticles , 2011 .
[36] Rafael Luque,et al. Magnetically recoverable nanocatalysts. , 2011, Chemical reviews.
[37] É. Boisselier,et al. Dendrimer-induced molecular catalysis in water: the example of olefin metathesis. , 2010, Chemistry.
[38] G. Newkome,et al. Dendrimers derived from 1 → 3 branching motifs. , 2010, Chemical reviews.
[39] D. Astruc. Palladium catalysis using dendrimers: molecular catalysts versus nanoparticles , 2010 .
[40] S. Shylesh,et al. Magnetically separable nanocatalysts: bridges between homogeneous and heterogeneous catalysis. , 2010, Angewandte Chemie.
[41] A. Kakkar,et al. "Click" methodologies: efficient, simple and greener routes to design dendrimers. , 2010, Chemical Society reviews.
[42] Rongzheng Liu,et al. Magnetic Nanocomposites: A New Perspective in Catalysis , 2010 .
[43] M. Toprak,et al. Covalent immobilization of invertase on PAMAM-dendrimer modified superparamagnetic iron oxide nanoparticles , 2010 .
[44] Wenzhao Li,et al. Magnetic Nanoparticle-Supported Hoveyda—Grubbs Catalysts for Ring-Closing Metathesis Reactions. , 2010 .
[45] S. Shylesh,et al. Palladium(II)‐Phosphine Complexes Supported on Magnetic Nanoparticles: Filtration‐Free, Recyclable Catalysts for Suzuki–Miyaura Cross‐Coupling Reactions , 2010 .
[46] C. Frost,et al. Easy-separable magnetic nanoparticle-supported Pd catalysts: Kinetics, stability and catalyst re-use , 2009 .
[47] Yinghuai Zhu,et al. Magnetic Nanoparticle Supported Second Generation Hoveyda–Grubbs Catalyst for Metathesis of Unsaturated Fatty Acid Esters , 2009 .
[48] Wenzhao Li,et al. Magnetic nanoparticle-supported Hoveyda-Grubbs catalysts for ring-closing metathesis reactions. , 2009, Chemical communications.
[49] G. van Koten,et al. Hexacationic Dendriphos ligands in the Pd-catalyzed Suzuki-Miyaura cross-coupling reaction: scope and mechanistic studies. , 2009, Journal of the American Chemical Society.
[50] R. Psaro,et al. Modern surface organometallic chemistry , 2009 .
[51] S. Bellemin‐Laponnaz,et al. "Catalysis in a tea bag": synthesis, catalytic performance and recycling of dendrimer-immobilised bis- and trisoxazoline copper catalysts. , 2009, Chemistry.
[52] L. Gade,et al. Immobilisation of the BINAP Ligand on Dendrimers and Hyperbranched Polymers: Dependence of the Catalytic Properties on the Linker Unit , 2009 .
[53] M. Meldal,et al. Cu‐Catalyzed Azide—Alkyne Cycloaddition , 2008 .
[54] J. Atwater,et al. Cobalt - poly(amido amine) superparamagnetic nanocomposites. , 2008, Materials letters.
[55] Guochen Jia,et al. Ruthenium-catalyzed azide-alkyne cycloaddition: scope and mechanism. , 2008, Journal of the American Chemical Society.
[56] J. C. Flores,et al. Dendrimers: Solutions For Catalyst Separation and Recycling–A Review† † Dedicated to the memory of Dr. José Antonio Delgado Oyagüe. , 2008 .
[57] D. Astruc,et al. Sulphonated “Click” Dendrimer‐Stabilized Palladium Nanoparticles as Highly Efficient Catalysts for Olefin Hydrogenation and Suzuki Coupling Reactions Under Ambient Conditions in Aqueous Media , 2008 .
[58] D. Astruc,et al. "Homeopathic" catalytic activity and atom-leaching mechanism in Miyaura-Suzuki reactions under ambient conditions with precise dendrimer-stabilized Pd nanoparticles. , 2007, Angewandte Chemie.
[59] K. Heuzé,et al. Efficient and recyclable dendritic Buchwald-type catalyst for the Suzuki reaction. , 2007, Chemical communications.
[60] J. C. Flores,et al. Catalysts based on palladium dendrimers , 2007 .
[61] A. Lu,et al. Magnetic nanoparticles: synthesis, protection, functionalization, and application. , 2007, Angewandte Chemie.
[62] É. Cloutet,et al. Click assembly of 1,2,3-triazole-linked dendrimers, including ferrocenyl dendrimers, which sense both oxo anions and metal cations. , 2007, Angewandte Chemie.
[63] Marc R. Knecht,et al. Synthesis, Characterization, and Magnetic Properties of Dendrimer-Encapsulated Nickel Nanoparticles Containing <150 Atoms , 2006 .
[64] Jean M. J. Fréchet,et al. The Dendrimer Effect in Homogeneous Catalysis , 2006 .
[65] J. Reek,et al. Dendrimers in catalysis , 2006 .
[66] H. Alper,et al. Metal supported on dendronized magnetic nanoparticles: highly selective hydroformylation catalysts. , 2006, Journal of the American Chemical Society.
[67] Feng Lu,et al. Nanoparticles as recyclable catalysts: the frontier between homogeneous and heterogeneous catalysis. , 2005, Angewandte Chemie.
[68] H. Hofmann,et al. Superparamagnetic nanoparticles for biomedical applications: Possibilities and limitations of a new drug delivery system , 2005 .
[69] Richard M Crooks,et al. Synthesis, characterization, and applications of dendrimer-encapsulated nanoparticles. , 2005, The journal of physical chemistry. B.
[70] D. Astruc,et al. Palladium–dodecanethiolate nanoparticles as stable and recyclable catalysts for the Suzuki–Miyaura reaction of aryl halides under ambient conditions , 2004 .
[71] Y. Niu. Dendrimer-encapsulated metal nanoparticles: synthesis, characterization, and applications to catalysis , 2004 .
[72] J. Reek,et al. Dendrimers as Support for Recoverable Catalysts and Reagents , 2003 .
[73] É. Cloutet,et al. Dendritic stars by ring-opening-metathesis polymerization from ruthenium-carbene initiators. , 2003, Angewandte Chemie.
[74] M. Delville,et al. Water-soluble mono- and star-shaped hexanuclear functional organo-iron catalysts for nitrate and nitrite reduction in water: syntheses and electroanalytical study☆ , 2002 .
[75] D. Astruc,et al. Dendritic Catalysts and Dendrimers in Catalysis , 2001 .
[76] J. Reek,et al. Transition Metal Catalysis Using Functionalized Dendrimers. , 2001, Angewandte Chemie.
[77] G. Ertl,et al. Handbook of Heterogeneous Catalysis , 1997 .
[78] E. Murugan,et al. Dendrimer grafted core–shell Fe3O4–polymer magnetic nanocomposites stabilized with AuNPs for enhanced catalytic degradation of Rhodamine B – A kinetic study , 2015 .
[79] D. Astruc,et al. "Click" dendrimers: synthesis, redox sensing of Pd(OAc)2, and remarkable catalytic hydrogenation activity of precise Pd nanoparticles stabilized by 1,2,3-triazole-containing dendrimers. , 2008, Chemistry.