Search results for "palladium"

showing 10 items of 956 documents

CCDC 162296: Experimental Crystal Structure Determination

2001

Related Article: J.Andrieu, J.-M.Camus, J.Dietz, P.Richard, R.Poli|2001|Inorg.Chem.|40|1597|doi:10.1021/ic000867y

(eta^3^-Allyl)-chloro-((2-(phenylamino)-2-phenylethyl)diphenylphosphine-P)-palladium(ii)Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1920566: Experimental Crystal Structure Determination

2019

Related Article: Banafshe Askari, Hadi Amiri Rudbari, Nicola Micale, Tanja Schirmeister, Thomas Efferth, Ean-Jeong Seo, Giuseppe Bruno, Kevin Schwickert|2019|Dalton Trans.|48|15869|doi:10.1039/C9DT02353D

(mu-12-bis(methylimino)ethane-12-dithiolato)-dichloro-bis(tri-n-propylphosphine)-di-palladiumSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 941095: Experimental Crystal Structure Determination

2013

Related Article: Christoph Gütz, Rainer Hovorka, Caroline Stobe, Niklas Struch, Filip Topić, Gregor Schnakenburg, Kari Rissanen, Arne Lützen|2014|Eur.J.Org.Chem.|2014|206|doi:10.1002/ejoc.201301314

(mu2-(M)-44'-((22'-bis(Methoxymethoxy)-11'-binaphthalene-66'-diyl)diethyne-21-diyl)dipyridine)-(mu2-(P)-44'-((22'-bis(methoxymethoxy)-11'-binaphthalene-66'-diyl)diethyne-21-diyl)dipyridine)-bis(13-bis(diphenylphosphino)propane)-di-palladium(ii) tetrakis(trifluoromethanesulfonate) tetrahydropyran solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 882325: Experimental Crystal Structure Determination

2015

Related Article: João Figueira, Wojciech Czardybon, José Carlos Mesquita, João Rodrigues, Fernando Lahoz, Luca Russo, Arto Valkonen, Kari Rissanen|2015|Dalton Trans.|44|4003|doi:10.1039/C4DT00493K

(mu2-14-Diethoxy-25-bis((4-ethynylphenyl)ethynyl)benzene)-dichloro-bis(triethylphosphine)-di-palladium(ii)Space GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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First copper(I) ferrocenyltetraphosphine complexes: possible involvement in Sonogashira cross-coupling reaction ?

2008

Preparation and characterization of the first examples of copper(I) ferrocenylpolyphosphine complexes are reported. The molecular structure of complex {P,P′,P′′-[1,1′,2,2′-tetrakis(diphenylphosphino)-4,4′-di-tert-butylferrocene]iodocopper(I)} (1) was solved by X-ray diffraction studies, and its fluxional behavior in solution was investigated by VT-31P NMR; both revealed a net triligated coordination preference of the ferrocenyl tetraphosphine Fc(P)4tBu with copper. The tetradentate ligand is an active auxiliary in Sonogashira alkynylation; therefore the general question of copper as a competitive coordination partner in the Pd/Cu-catalyzed Sonogashira reaction was raised and discussed. Elec…

010405 organic chemistryArylOrganic Chemistry[ CHIM.COOR ] Chemical Sciences/Coordination chemistrySonogashira couplingchemistry.chemical_element010402 general chemistry01 natural sciencesMedicinal chemistryCopperCoupling reaction0104 chemical sciencesCatalysisInorganic Chemistrychemistry.chemical_compoundchemistryPhenylacetyleneMolecule[CHIM.COOR]Chemical Sciences/Coordination chemistryPhysical and Theoretical ChemistryComputingMilieux_MISCELLANEOUSPalladium
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Palladium-catalyzed amination of aryl dibromides with secondary amines: synthetic and mechanistic aspects

1999

Abstract Diaminobenzenes are obtained starting from m- and p-dibromobenzenes and secondary amines in the presence of Pd(dba)2/P(o-tolyl)3and sodium tert-butoxide in moderate to good yields. Reductive dehalogenation of aryl dibromides is a major side reaction under these conditions. The study of this reaction has shown that the formation of reductive dehalogenation products occurs according to two independent ways. The first one proceeds via the well-known β-hydride elimination from amido-coordinated palladium complexes. The second one involves the formation of hydrido palladium complexes from amino-coordinated derivatives. Although our results do not allow us to propose a detailed mechanist…

010405 organic chemistryChemistryArylOrganic ChemistrySide reactionHalogenationchemistry.chemical_element010402 general chemistry01 natural sciencesBiochemistryCombinatorial chemistry0104 chemical sciencesCatalysischemistry.chemical_compoundDeprotonationDrug Discovery[CHIM]Chemical SciencesOrganic chemistryComputingMilieux_MISCELLANEOUSAminationPalladiumTetrahedron Letters
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Synthesis of P-Chirogenic Diphosphinotriazoles and Their Use in Asymmetric Catalysis

2021

International audience; The stereoselective synthesis of P-chirogenic diphosphinotriazoles using ephedrine methodology was described. The coordination behavior of these compounds as P,P-ligands has been demonstrated by the preparation as well as the spectroscopic and X-ray crystallographic analyses of a palladium complex. The efficiency of these new P-chirogenic diphosphines in the palladiumcatalyzed asymmetric allylic substitution reaction was also evaluated.

010405 organic chemistryChemistryEnantioselective synthesischemistry.chemical_element[CHIM]Chemical SciencesGeneral Chemistry010402 general chemistry01 natural sciencesCombinatorial chemistry0104 chemical sciencesPalladium
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Localization of alkali metal ions in sodium-promoted palladium catalysts as studied by low energy ion scattering and transmission electron microscopy

1996

Three series of palladium-based catalysts have been studied by Low Energy Ion Scattering (LEIS) and Transmission Electron Microscopy (TEM). The first series is comprised of Na-Pd/SiO{sub 2} catalysts, obtained by addition of palladium to a silica support and by further addition of sodium ions with a Na/Pd atomic ratio (R) equal to 0,6.4 and 25.6. The second series consists of palladium catalysts supported on natural pumice, in which, due to a different loading of supported palladium, R{prime}, the (Na+K)/Pd atomic ratio, is equal to 17.0 and 39.4. The third series is represented by two palladium-based catalysts supported on {open_quotes}model pumices,{close_quotes} synthetic silico-aluminat…

010405 organic chemistryChemistryInorganic chemistrychemistry.chemical_element[CHIM.CATA]Chemical Sciences/Catalysis010402 general chemistryAlkali metal01 natural sciencesCatalysis0104 chemical sciencesCatalysisIonMetalTransition metalLow-energy ion scatteringvisual_artvisual_art.visual_art_mediumAtomic ratioPhysical and Theoretical ChemistryPalladium
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From self-inclusion and host-guest complexes to channel structures

2012

Various supramolecular interactions are applied as driving forces in self-assembly and molecular recognition processes. Single crystal X-ray diffraction method is especially important for solid-state studies of non-covalent interactions as it reveals their influence on the molecular and supramolecular structures. This paper discusses structures of two completely different types of compounds in which a variety of intermolecular interactions are involved. It will be shown that strong and weak intermolecular hydrogen bonds in N-alkylammonium resorcinarene salts, depending on the type of anion, inclusion of resorcinarene upper rim pendant group or solvent molecules into the cavity, strongly aff…

010405 organic chemistryChemistryStereochemistryX-ray structure; supramolecular chemistry; hydrogen bonding; hydrophobic interaction; resorcinarene; palladium complexSupramolecular chemistryGeneral ChemistryInclusion (mineral)010402 general chemistryta11601 natural sciencesHost (network)0104 chemical sciencesCommunication channel
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Structurally characterized dipalladium(ii)-oxamate metallacyclophanes as efficient catalysts for sustainable Heck and Suzuki reactions in ionic liqui…

2018

A new generation of dipalladium-oxamate metallacyclophanes of formulas (n-NBu4)4 [Pd2(ppba)2] (1), (n-NBu4)4[Pd2(dpvba)2] (2), (n-NBu4)4[Pd2(dpazba)2] (3), (n-NBu4)4[Pd2(dpeba)2] (4) and (n-NBu4)4[Pd2(tpeba)2] (5) [n-NBu4+ = tetra-n-butylammonium cation, H4ppba = N,N′-1,4-phenylenebis(oxamic acid), H4dpvba = N,N′-4,4′-diphenylethenebis(oxamic acid), H4dpazba = N,N′-4,4′-diphenylazobis(oxamic acid), H4dpeba = N,N′-4,4′-diphenylethynebis(oxamic acid) and H4tpeba = N,N′-1,4-di(4-phenylethynyl)phenylenebis(oxamic acid)] was prepared. The crystal structure of the solvated species of 2–4, namely (n-NBu4)4[Pd2(dpvba)2]·6MeOH·2Et2O (2a), (n-NBu4)4[Pd2(dpazba)2]·8MeOH (3a), and (n-NBu4)2[Pd2(dpeba)2…

010405 organic chemistryChemistrychemistry.chemical_elementIonic bondingCrystal structure010402 general chemistry01 natural sciencesMedicinal chemistry0104 chemical sciencesCatalysisInorganic Chemistrychemistry.chemical_compoundDeprotonationSuzuki reactionIonic liquidPhenylboronic acidPalladiumInorganic Chemistry Frontiers
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