998 resultados para Dimère de rhodium(II)


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Substituted phenols undergo a facile Rh carbenoid-mediated O-H insertion reaction with (EtO)2P(O)C(:N2)CO2R (I; R = Et, Me) to give 44-86% 2-aryloxyphosphonoacetates II (R1 = e.g., H, 4-Me, 4-Cl, 2-OH, 4-PhCH2O). Phenols contg. strongly electron withdrawing groups, bulky ortho-substituents or certain ortho-heteroatom substituents show reduced or variable yields. Catechol affords a mono-adduct which cyclizes to lactate III. Aniline inserts preferentially and exclusively over phenol in a competition reaction with I (R = Et) to give (EtO)2P(O)CH(NHPh)CO2Et. II are versatile intermediates in a prepn. of 2-aryloxy-3-phenylpropenoates IV by Wadsworth-Emmons reaction with benzaldehydes R2C6H4CHO (R2 = PhCH2O, 2-Cl, H). Dissolving Mg metal redn. provides a mild method for the conversion of propenoates IV into the corresponding propanoates.

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Cette thèse traite de la chimie des complexes pinces de Ni(II) ainsi que des complexes cyclométallés de Ni(II) comportant au moins un motif phosphinite. Elle se divise en trois parties. La première concerne la synthèse, la caractérisation, le mécanisme de formation et la réactivité des complexes pinces de Ni(II) à base de ligand de type POCOP 1,3-(i-Pr2PO)2C6H4. De nouveaux ligands de type R-(POCOP) = κP,κC,κP-{Rn-2,6-( R'2PO)2C6H4-n}; Rn = 4-OMe, 4-Me, 4-CO2Me, 3-OMe, 3- CO2Me, 3,5-t-Bu2 ; R' = i-Pr, t-Bu ont été synthétisés suite à l'addition de chlorophosphine ClPR'2 à une solution de résorcinol ou dérivés en présence de base. La synthèse des complexes R-(POCOP)Ni(Br) s'effectue à partir du ligand correspondant en présence de base, et de {NiBr2(NCiPr)}n. Ce nouveau précurseur de nickel est synthétisé à partir de brome de nickel métallique dans l'isobutyronitrile. Il est stable sous atmosphère inerte et sa solubilité dans les solvants polaires permet d'étudier les synthèses des complexes en milieu homogène. Le mécanisme de formation des complexes portant des ligand pinces (PCsp3P) 1,3-(i- Pr2PCH2CH2)2CH2, (POCsp3OP) 1,3-(i-Pr2POCH2)2CH2, (PCsp2P) 1,3-(i- Pr2PCH2)2C6H4, Rn-(POCsp2OP) 1,3-(i-Pr2PO)2C6H4-n via nickellation du lien C-H a été investigué avec une méthode de réaction de compétition. Cette étape a été déterminée comme étant de nature électrophile. Les complexes résultants ont été complètement caractérisés. Une corrélation a notamment été effectuée entre le déplacement chimique du Cipso en spectroscopie RMN 13C et le potentiel d'oxydation Eox en voltamétrie cyclique. Une nouvelle méthode de synthèse directe verte "one pot" a été mise en place. En faisant réagir à 75 °C un mélange hétérogène de II résorcinol, de chlorodiisopropylphosphine et de nickel métallique en poudre, on obtient le complexes pince (POCOP)Ni(Cl) avec des rendements allant jusqu'à 93%. La réactivité de ces complexes POCOP a été investiguée pour des réactions de fluorination et trifluorométhylation des halogénures d'alkyle. La synthèse du (POCOP)Ni(F) a lieu à partir de précurseur (POCOP)Ni(X) (X=Br, Cl), en présence d'un large excès de fluorure d'argent AgF. Ce complexe catalyse la fluorination du bromure de benzyle et peut être converti en (POCOP)Ni(CF3) en présence de réactif du Ruppert, Me3SiCF3. La réaction entre (POCOP)Ni(CF3) et le bromure de benzyle dans les solvants aromatiques mène à la conversion totale du complexe en (POCOP)Ni(Br) et à l'inattendue benzylation du solvant aromatique utilisé. La seconde partie concerne la synthèse des nouveaux complexes non symétriques à base de ligands comportant un motif imidazolo-phosphine (PIMCOP) 3-[2-(R2P)-C3H2N2]-(R2PO)-C6H3, imidazoliophosphine (PIMIOCOP) 3-[2-(R2P)-3- (CH3)-C3H2N2]-(R2PO)-C6H3] et carbène N-hétérocyclique (NHCCOP). La double déprotonation du 3-hydroxyphenyl-imidazole suivi de l'addition de deux équivalents de chlorodiphenylphosphine mène à l'obtention du ligand PIMCOP 3-[3-(CH3)- C3H2N2]-(R2PO)-C6H3. L'étape de nickellation a lieu comme dans le cas des composés (POCOP)Ni. La méthylation du motif imidazole du (PIMCOP)Ni(Br) par le triflate de méthyle MeOTf, donne le dérivé (PIMIOCOP)Ni(Br). Ce dernier est converti en (NHCCOP)Ni(Br) après l'addition de chlorure de tétraéthylamonium NEt4Cl. Les analogues i-Pr2P de ces complexes sont synthétisés en remplaçant ClPPh2 par ClPiPr2. On obtient les espèces cationiques [(PIMCOP)Ni(NCCH3)][OTf], [(PIMIOCOP)Ni(NCCH3)][OTf]2 et III [(NHCCOP)Ni(NCCH3)][OTf] suite à l'addition en solution dans l'acétonitrile de triflate d'argent AgOTf. Ces espèces ont été utilisés comme catalyseurs pour la synthèse d'amidine à partir de benzonitrile et de diverse amines aliphatiques. Enfin des complexes orthonickellés trans-Ni[(ĸ2-P,C-P(OC6H4)-(iPr2)( iPr2P(OC6H5))]Br à base de phosphinite ont été synthétisés et caractérisés. Les ligands sont synthétisés par réaction d'un phénol et de chlorodiisopropylphosphine en présence de base. L'ajout de {NiBr2(NCiPr)}n et de triéthylamine permet l'orthométallation via une étape de nickellation C-H. Un intermédiaire trans- [NiBr2{PiPr2(OC6H5)}2] de cette réaction a été isolé. Le complexe dimère peut réagir avec des espèces électrophiles mener à l'ortho-fonctionnalisation de la phosphinite.

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A ring-contractive and highly diastereoselective [2,3]-sigmatropic rearrangement occurs when N-methyl-1,2,3,6-tetrahydropyridine is treated with sub-stoichiometric amounts of copper or rhodium salts, in the presence of ethyl diazoacetate, giving ethyl cis-N-methyl-3-ethenyl proline (4).

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Reaction of a series of N-(aryl)picolinamide ligands (HL-R, where II denotes the acidic proton and R (R = OCH3, CH3, H, Cl and NO2) is the para substituent in the aryl fragment) with RhCl3 center dot 3H(2)O in refluxing ethanal in the presence of a base (NEt3) affords two groups of yellow complexes of type [Rh(H-R)(L-R)Cl-2] and [Rh(L-R)(2)(H2O)Cl]. In [Rh(HL-R)(L-R)Cl-2], HL-R is coordinated as neutral N,O-donor and L-R as monoanionic N,N-donor, and the two chlorides are mutually trans. In [Rh(L-R)(2)(H2O)CI] both the amide ligands are coordinated as monoanionic N,N-donor, and the chloro and aquo ligands are mutually cis. Structures of the [Rh(HL-OCH3)(L-CH3)Cl-2] and [Rh(L-Cl)(2)(H2O)CI] complexes have been determined by X-ray crystallography. All the complexes show characteristic H-1 NMR signals and intense LLCT transitions in the ultraviolet region. Cyclic voltammetry on the complexes shows an oxidation of the coordinated amide ligand within 0.78-1.80 V vs SCE and a reductive response within -0.20 to -0.75 V vs SCE. DFT calculations have been done to explain the electronic spectral and electrochemical properties.

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The research performed in the framework of this Master Thesis has been directly inspired by the recent work of an organometallic research group led by Professor Maria Cristina Cassani on a topic related to the structures, dynamics and catalytic activity of N-heterocyclic carbene-amide rhodium(I) complexes1. A series of [BocNHCH2CH2ImR]X (R = Me, X = I, 1a’; R = Bz, X = Br, 1b’; R = trityl, X = Cl, 1c’) amide-functionalized imidazolium salts bearing increasingly bulky N-alkyl substituents were synthetized and characterized. Subsequently, these organic precursors were employed in the synthesis of silver(I) complexes as intermediate compounds on a way to rhodium(I) complexes [Rh(NBD)X(NHC)] (NHC = 1-(2-NHBoc-ethyl)-3-R-imidazolin-2-ylidene; X = Cl, R = Me (3a’), R = Bz (3b’), R = trityl (3c’); X = I, R = Me (4a’)). VT NMR studies of these complexes revealed a restricted rotation barriers about the metal-carbene bond. However, while the rotation barriers calculated for the complexes in which R = Me, Bz (3a’,b’ and 4a) matched the experimental values, this was not true in the trityl case 3c’, where the experimental value was very similar to that obtained for compound 3b’ and much smaller with respect to the calculated one. In addition, the energy barrier derived for 3c’ from line shape simulation showed a strong dependence on the temperature, while the barriers measured for 3a’,b’ did not show this effect. In view of these results and in order to establish the reasons for the previously found inconsistency between calculated and experimental thermodynamic data, the first objective of this master thesis was the preparation of a series of rhodium(I) complexes [Rh(NBD)X(NHC)] (NHC = 1-benzyl-3-R-imidazolin-2-ylidene; X = Cl, R = Me, Bz, trityl, tBu), containing the benzyl substituent as a chiral probe, followed by full characterization. The second objective of this work was to investigate the catalytic activity of the new rhodium compounds in the hydrosilylation of terminal alkynes for comparison purposes with the reported complexes. Another purpose of this work was to employ the prepared N-heterocyclic ligands in the synthesis of iron(II)-NHC complexes.

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A series of imidazolium salts of the type [BocNHCH2CH2ImR]X (Boc = t-Bu carbamates; Im = imidazole) (R = Me, X = I, 1a; R = Bn, X = Br, 1b; R = Trityl, X = Cl, 1c) and [BnImR’]X (R’ = Me, X = Br, 1d; R’ = Bn, X = Br, 1e; R’ = Trityl, X = Cl, 1g; R’ = tBu, X = Br, 1h) bearing increasingly bulky substituents were synthetized and characterized. Subsequently, these precursors were employed in the synthesis of silver(I)-N-heterocyclic (NHC) complexes as transmetallating reagents for the preparation of rhodium(I) complexes [RhX(NBD)(NHC)] (NHC = 1-(2-NHBoc-ethyl)-3-R-imidazolin-2-ylidene; X = Cl; R = Me, 4a; R = Bn, 4b; R = Trityl, 4c; X = I, R = Me, 5a; NHC = 1-Bn-3-R’-imidazolin-2-ylidene; X = Cl; R’ = Me, 4d, R’ = Bn, 4e, R’ = Trityl, 4g; R’ = tBu, 4h). VT NMR studies of these complexes revealed a restricted rotation barriers about the metal-carbene bond. While the rotation barriers calculated for the complexes in which R = Me, Bn (4a,b,d,e and 5a) matched the experimental values, this was not true for the complexes 4c,g, bearing a trityl group for which the values are much smaller than the calculated ones. Energy barriers for 4c,g, derived from a line shape simulation, showed a strong dependence on the temperature while for 4h the rotational energy barrier is stopped at room temperature. The catalytic activity of the new rhodium compounds was investigated in the hydrosilylation of terminal alkynes and in the addition of phenylboronic acid to benzaldehyde. The imidazolium salts 1d,e were also employed in the synthesis of new iron(II)-NHC complexes. Finally, during a six-months stay at the University of York a new ligand derived from Norharman was prepared and employed in palladium-mediated cross-coupling.

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In this paper, a space fractional di®usion equation (SFDE) with non- homogeneous boundary conditions on a bounded domain is considered. A new matrix transfer technique (MTT) for solving the SFDE is proposed. The method is based on a matrix representation of the fractional-in-space operator and the novelty of this approach is that a standard discretisation of the operator leads to a system of linear ODEs with the matrix raised to the same fractional power. Analytic solutions of the SFDE are derived. Finally, some numerical results are given to demonstrate that the MTT is a computationally e±cient and accurate method for solving SFDE.