293 resultados para Dimère de rhodium


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Two distinct systems for the rhodium-catalyzed enantioselective desymmetrization of meso-cyclic anhydrides have been developed. Each system has been optimized and are compatible with the use of in situ prepared organozinc reagents. Rhodium/PHOX species efficiently catalyze the addition of alkyl nucleophiles to glutaric anhydrides, while a rhodium/phosphoramidite system is effective in the enantioselective arylation of succinic and glutaric anhydrides.

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The hydroformylation of 1-octene under continuous flow conditions is described. The system involves dissolving the catalyst, made in situ from [ Rh(acac)(CO)(2)] (acacH = 2,4- pentanedione) and [RMIM][TPPMS] ( RMIM = 1-propyl (Pr), 1-pentyl (Pn) or 1-octyl (O)-3-methyl imidazolium, TPPMS = Ph2P(3-C6H4SO3)), in a mixture of nonanal and 1-octene and passing the substrate, 1-octene, together with CO and H-2 through the system dissolved in supercritical CO2 (scCO(2)). [PrMIM][TPPMS] is poorly soluble in the medium so heavy rhodium leaching (as complexes not containing phosphine) occurs in the early part of the reaction. [PnMIM][ PPMS] affords good rates at relatively low catalyst loadings and relatively low overall pressure (125 bar) with rhodium losses <1 ppm, but the catalyst precipitates at higher catalyst loadings, leading to lower reaction rates. [OMIM][ TPPMS] is the most soluble ligand and promotes high reaction rates, although preliminary experiments suggested that rhodium leaching was high at 5-10 ppm. Optimisation aimed at balancing flows so that the level within the reactor remained constant involved a reactor set up based around a reactor fitted with a sight glass and sparging stirrer with the CO2 being fed by a cooled head HPLC pump, 1-octene by a standard HPLC pump and CO/H-2 through a mass flow controller. The pressure was controlled by a back pressure regulator. Using this set up, [OMIM][ TPPMS] as the ligand and a total pressure of 140 bar, it was possible to control the level within the reactor and obtain a turnover frequency of ca. 180 h(-1). Rhodium losses in the optimised system were 100 ppb. Transport studies showed that 1-octene is preferentially transported over the aldehydes at all pressures, although the difference in mol fraction in the mobile phase was less at lower pressures. Nonanal in the mobile phase suppresses the extraction of 1-octene to some extent, so it is better to operate at high conversion and low pressure to optimise the extraction of the products relative to the substrate. CO and H2 in the mobile phase also suppress the extraction effciency by as much as 80%.

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A different approach to the synthesis of dipeptides is described based on the formation of the (NHCHRCONH)-C-1-(CHRCO)-C-2 bond by carbenoid N-H insertion, rather than the formation of the peptide bond itself. Thus decomposition of triethyl diazophosphonoacetate catalysed by rhodium(Ii) acetate in the presence of N-protected amino acid amides 8 gives the phosphonates 9, Subsequent Wadsworth-Emmons reaction of 9 with aldehydes in the presence of DBU gives dehydro dipeptides 10. The reaction has been extended to a simple two-step procedure, without the isolation of the intermediate phosphonate. for conversion of a range of amino acid amides 11 into dehydro dipepides 12 and to an N-methylamide 11h, and for conversion of a dipeptide: to tripeptide (13-14). Direct conversion, by using methyl diazophenylacetate, of amino acid amides to phenylglycine-containing dipeptides 19 proceeds in good chemical yield, but with poor diastereoselectivity.

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Rhodium(II) acetate catalyzed reaction of tri-Et diazophosphonoacetate with amides, carbamates or ureas gives a range of N-acyl phosphonylglycine derivs. by N-H insertion reaction of the intermediate rhodium carbenoid.

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Enantiopure arene cis-tetrahydrodiols of bromobenzene and iodobenzene have been obtained in good yields, from chemoselective hydrogenation (rhodium-graphite) of the corresponding cis-dihydrodiol metabolites. Palladium-catalysed substitution of the halogen, by hydrogen, boron, nitrogen and phosphorus nucleophiles, in the acetonide derivatives, has yielded highly functionalised products for application in synthesis with potential as scaffolds for chiral ligands.

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The chemoenzymatic synthesis of a Lewis basic phosphine-phosphine oxide organocatalyst from a cis-dihydrodiol metabolite of bromobenzene proceeds via a palladium-catalysed carbon-phosphorus bond coupling and a novel room temperature Arbuzov [2,3]-sigmatropic rearrangement of an allylic diphenylphosphinite. Allylation of aromatic aldehydes were catalysed by the Lewis basic organocatalyst giving homoallylic alcohols in up to 57% ee. This compound also functioned as a ligand for rhodium-catalysed asymmetric hydrogenation of acetamidoacrylate giving reduction products with ee values of up to 84%.

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Stable chromium, molybdenum, tungsten, manganese, rhenium, ruthenium, osmium, cobalt, rhodium, and iridium metal nanoparticles (MNPs) have been reproducibly obtained by facile, rapid (3 min), and energysaving 10 W microwave irradiation (MWI) under an argon atmosphere from their metal–carbonyl precursors [Mx(CO)y] in the ionic liquid (IL) 1-butyl-3-methylimidazolium tetrafluoroborate ([BMIm][BF4]). This MWI synthesis is compared to UV-photolytic (1000 W, 15 min) or conventional thermal decomposition (180–2508C, 6–12 h) of [Mx(CO)y] in ILs. The MWIobtained nanoparticles have a very small (<5 nm) and uniform size and are prepared without any additional stabilizers or capping molecules as long-term stable M-NP/IL dispersions (characterization by transmission electron microscopy (TEM), transmission electron diffraction (TED), and dynamic light scattering (DLS)). The ruthenium, rhodium, or iridium nanoparticle/IL dispersions are highly active
and easily recyclable catalysts for the biphasic liquid–liquid hydrogenation of cyclohexene to cyclohexane with activities of up to 522 (mol product)(mol Ru)1h1 and 884 (mol product)(molRh)1h1 and give almost quantitative conversion within 2 h at 10 bar H2 and 908C. Catalyst poisoning experiments with CS2 (0.05 equiv per Ru) suggest a heterogeneous surface catalysis of RuNPs.

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Microcystins are one of the primary hepatotoxic cyanotoxins released from cyanobacteria. The presence of these compounds in water has resulted in the death of both humans and domestic and wild animals. Although microcystins are chemically stable titanium dioxide photocatalysis has proven to be an effective process for the removal of these compounds in water. One problem with this process is that it requires UV light and therefore in order to develop effective commercial reactor units that could be powered by solar light it is necessary to utilize a photocatalyst that is active with visible light. In this paper we report on the application of four visible light absorbing photocatalysts for the destruction of microcystin-LR in water. The rhodium doped material proved to be the most effective material followed by a carbon-modified titania. The commercially available materials were both relatively poor photocatalysts under visible radiation while the platinum doped catalyst also displayed a limited activity for toxin destruction. © 2009 Elsevier Ltd. All rights reserved.

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Dry reforming is a promising reaction to utilise the greenhouse gases CO2 and CH4. Nickel-based catalysts are the most popular catalysts for the reaction, and the coke formation on the catalysts is the main obstacle to the commercialisation of dry reforming. In this study, the whole reaction network of dry reformation on both flat and stepped nickel catalysts (Ni(111) and Ni(211)) as well as nickel carbide (flat: Ni3C(001); stepped: Ni3C(111)) is investigated using density functional theory calculations. The overall reaction energy profiles in the free energy landscape are obtained, and kinetic analyses are utilised to evaluate the activity of the four surfaces. By careful examination of our results, we find the following regarding the activity: (i) flat surfaces are more active than stepped surfaces for the dry reforming and (ii) metallic nickel catalysts are more active than those of nickel carbide, and therefore, the phase transformation from nickel to nickel carbide will reduce the activity. With respect to the coke formation, the following is found: (i) the coke formation probability can be measured by the rate ratio of CH oxidation pathway to C oxidation pathway (r(CH)/r(C)) and the barrier of CO dissociation, (ii) on Ni(111), the coke is unlikely to form, and (iii) the coke formations on the stepped surfaces of both nickel and nickel carbide can readily occur. A deactivation scheme, using which experimental results can be rationalised, is proposed. 

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The energetics of the low-temperature adsorption and decomposition of nitrous oxide, N(2)O, on flat and stepped platinum surfaces were calculated using density-functional theory (DFT). The results show that the preferred adsorption site for N(2)O is an atop site, bound upright via the terminal nitrogen. The molecule is only weakly chemisorbed to the platinum surface. The decomposition barriers on flat (I 11) surfaces and stepped (211) surfaces are similar. While the barrier for N(2)O dissociation is relatively small, the surface rapidly becomes poisoned by adsorbed oxygen. These findings are supported by experimental results of pulsed N(2)O decomposition with 5% Pt/SiO(2) and bismuth-modified Pt/C catalysts. At low temperature, decomposition occurs but self-poisoning by O((ads)) prevents further decomposition. At higher temperatures some desorption Of O(2) is observed, allowing continued catalytic activity. The study with bismuth-modified Pt/C catalysts showed that, although the activation barriers calculated for both terraces and steps were similar, the actual rate was different for the two surfaces. Steps were found experimentally to be more active than terraces and this is attributed to differences in the preexponential term. (C) 2004 Elsevier Inc. All rights reserved.

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Density functional theory calculations are carried out for Rh(111)-p(2 x 2)-CO, Rh(111)-p(2 x 2)-S, Rh(111)-p(2 x 2)-(S + CO), Rh(111)-p(3 x 3)-CO, Rh(111)-p(3 x 3)-S and Rh(111)-p(3 x 3)-(S + CO), aiming to shed some light on the S poisoning effect. Geometrical structures of these systems are optimized and chemisorption energies are determined. The presence of S does not significantly influence the geometrical structure and chemisorption energy of CO and vice versa, which strongly suggests that the interaction between CO and S on the Rh(111) surface is mainly short-range in nature. The long range electronic effect for the dramatic attenuation of the CO methanation activity by sulfur is likely to be incorrect. It is suggested that an ensemble effect may be dominant in the catalytic deactivation. (C) 1999 Elsevier Science B.V. All rights reserved.

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O trabalho apresentado nesta dissertação descreve estudos desenvolvidos segundo três metodologias para a funcionalização de meso-tetra-arilporfirinas; uma delas baseada na funcionalização com diazo compostos, outra na reacção de Suzuki-Miyaura e a terceira na reacção de metátese. O presente documento é composto por quatro partes distintas. Na primeira parte são feitas considerações gerais sobre propriedades e aplicações de macrociclos porfirínicos. Na segunda parte é apresentado o trabalho realizado na funcionalização de porfirinas com diazo compostos através de reacções de inserção com um catalisador de ródio(II). Este estudo envolveu a preparação de duas porfirinas com grupos O-H e N-H nas posições para dum substituinte meso-fenilo. Os estudos iniciaram-se com a reacção de 5-(4-hidroxifenil)-10,15,20-trifenilporfirinatozinco(II) com diazoacetato de etilo na presença de Rh2(OAc)4. Obteve-se o produto esperado de inserção com bons rendimentos. A reacção de 5-(4-aminofenil)- 10,15,20-trifenilporfirinatozinco(II) com esse diazo composto na presença de Rh2(OAc)4 mostrou um perfil diferente do da reacção com o outro porfirinato. Foram obtidos três produtos, a saber: produto de bis-inserção e dois outros contendo o grupo funcional amida. Este capítulo descreve ainda a síntese de glicoporfirinas e de glicoclorinas através de reacções de inserção e de ciclopropanação envolvendo, respectivamente, os complexos 5-(4-hidroxifenil)- 10,15,20-trifenilporfirinatozinco(II) e 5,10,15,20- tetraquis(pentafluorofenil)porfirinatozinco(II) com α-diazoacetatos com substituintes sacarídicos. Foram usados, como catalisadores, Rh2(OAc)4 e CuCl, respectivamente, na reacção de inserção e na de ciclopropanação. Tendo em vista a sua aplicação em PDT, os novos produtos foram descomplexados e a unidade glicosídica foi desprotegida. Estudos de geração de oxigénio singuleto mostraram que os compostos obtidos são bons geradores dessa espécie citotóxica. Foram também realizados estudos de avaliação da actividade fotodinâmica em células humanas tumorais HeLa e em células humanas saudáveis HaCaT. Estudos de viabilidade celular, após tratamento fotodinâmico, mostraram que as glicoclorinas são mais eficazes na fotoinactivação das células tumorais. Apenas o derivado da clorina com a unidade de galactose mostrou selectividade para a linha celular tumoral, inibindo o crescimento desta e não causando efeito significativo na linha celular saudável. Este fotossensibilizador não foi tóxico na ausência de luz e depois do tratamento fotodinâmico e em condições sub-letais, provocou vacuolização citoplasmática e retracção pronunciada nas células tumorais, enquanto que nas células saudáveis os danos sofridos foram escassos. Nos estudos de localização celular este fotossensibilizador localizou-se na membrana citoplasmática e nos lisossomas tanto nas células HeLa como nas HaCaT. Na terceira parte deste trabalho são descritos os resultados obtidos nos estudos de funcionalização de porfirinas através da reacção de Suzuki-Miyaura. O complexo 2-(4,4,5,5,-tetrametil-1,3,2-dioxaborolan-2-il)-5,10,15,20- tetrafenilporfirinatozinco(II) foi o composto escolhido como reagente de partida. Usando a reacção de Suzuki foi possível sintetizar complexos β-bromoarilporfirínicos em bons rendimentos. Estes complexos foram sujeitos à reacção de Suzuki com pinacolborano, tendo sido possível obter os produtos de acoplamento esperados e ainda derivados diméricos de complexos porfirínicos ligados por unidades fenileno. Esta metodologia reacional, catalisada por paládio, permitiu ainda sintetizar novos derivados quinolona-porfirina através da reacção do complexo porfirínico β-borilado anteriormente referido com bromo-quinolonas Nsubstiuídas com grupos alquílicos e glicosídicos. Deste modo foram obtidos derivados quinolona-porfirina em bons rendimentos. Com vista a realizar estudos de potencial aplicação em PACT, foram hidrolisados os grupos éster da unidade de quinolona e clivados os grupos protectores das unidades glicosídicas desses derivados. No estudo por MS Tandem (MS/MS) foi possível verificar que os isómeros dos derivados quinolona-porfirina sofrem as mesmas vias de fragmentação, confirmando as suas estruturas análogas. Foi possível ainda distinguir os derivados em que a unidade de porfirina está ligada à quinolona através da posição C-6 da quinolona daqueles em que a unidade de porfirina está ligada à quinolona através da sua posição C-7. Os estudos de geração de oxigénio singuleto mostraram que as porfirinas β- substituídas com unidades de quinolona são melhores geradoras desta espécie citotóxica do que a tetrafenilporfirina e que a eficiência que têm em gerar essa espécie é afectada pela posição da ligação entre a porfirina e a quinolona, assim como com o tipo do N-substituinte da quinolona. As bases livres dos conjugados quinolona-porfirinatos foram testadas como fotossensibilizadores em PACT em células do parasita Leishmania Braziliensis, tendo-se observado que estes compostos têm capacidade para fotoinactivar este parasita. Na quarta parte deste trabalho são descritos os resultados dos estudos de funcionalização de porfirinas através da reacção de metátese com catalisador de Grubbs, visando a obtenção de novos macrociclos com grupos triazolilo. Verificouse que a eficiência da reacção de metátese cruzada entre 2-vinil-5,10,15,20- tetrafenilporfirinatozinco(II) e 4-vinil-1,2,3-triazóis N-substituídos dependia das condições reaccionais e do triazol usado em cada caso. Foi possível ainda concluir que o impedimento estéreo das espécies envolvidas é um dos responsáveis pelo ciclo catalítico prosseguir por uma via secundária, originando uma espécie de ruténio pouco eficiente como catalisador. Este estudo foi estendido à reacção dos 4-vinil-1,2,3-triazois seleccionados com 2-butadienil-5,10,15,20- tetrafenilporfirinatoniquel(II); em cada caso foi possível obter uma mistura de isómeros dos derivados triazol-porfirina, geralmente em maiores rendimentos globais do que na reacção com 2-vinil-5,10,15,20-tetrafenilporfirinatozinco(II). Este facto será indicativo de que a reacção de metátase com esse derivado porfirínico segue, predominantemente, a via mais eficiente.

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Part I: Ultra-trace determination of vanadium in lake sediments: a performance comparison using O2, N20, and NH3 as reaction gases in ICP-DRC-MS Thermal ion-molecule reactions, targeting removal of specific spectroscopic interference problems, have become a powerful tool for method development in quadrupole based inductively coupled plasma mass spectrometry (ICP-MS) applications. A study was conducted to develop an accurate method for the determination of vanadium in lake sediment samples by ICP-MS, coupled with a dynamic reaction cell (DRC), using two differenvchemical resolution strategies: a) direct removal of interfering C10+ and b) vanadium oxidation to VO+. The performance of three reaction gases that are suitable for handling vanadium interference in the dynamic reaction cell was systematically studied and evaluated: ammonia for C10+ removal and oxygen and nitrous oxide for oxidation. Although it was able to produce comparable results for vanadium to those using oxygen and nitrous oxide, NH3 did not completely eliminate a matrix effect, caused by the presence of chloride, and required large scale dilutions (and a concomitant increase in variance) when the sample and/or the digestion medium contained large amounts of chloride. Among the three candidate reaction gases at their optimized Eonditions, creation of VO+ with oxygen gas delivered the best analyte sensitivity and the lowest detection limit (2.7 ng L-1). Vanadium results obtained from fourteen lake sediment samples and a certified reference material (CRM031-040-1), using two different analytelinterference separation strategies, suggested that the vanadium mono-oxidation offers advantageous performance over the conventional method using NH3 for ultra-trace vanadium determination by ICP-DRC-MS and can be readily employed in relevant environmental chemistry applications that deal with ultra-trace contaminants.Part II: Validation of a modified oxidation approach for the quantification of total arsenic and selenium in complex environmental matrices Spectroscopic interference problems of arsenic and selenium in ICP-MS practices were investigated in detail. Preliminary literature review suggested that oxygen could serve as an effective candidate reaction gas for analysis of the two elements in dynamic reaction cell coupled ICP-MS. An accurate method was developed for the determination of As and Se in complex environmental samples, based on a series of modifications on an oxidation approach for As and Se previously reported. Rhodium was used as internal standard in this study to help minimize non-spectral interferences such as instrumental drift. Using an oxygen gas flow slightly higher than 0.5 mL min-I, arsenic is converted to 75 AS160+ ion in an efficient manner whereas a potentially interfering ion, 91Zr+, is completely removed. Instead of using the most abundant Se isotope, 80Se, selenium was determined by a second most abundant isotope, 78Se, in the form of 78Se160. Upon careful selection of oxygen gas flow rate and optimization ofRPq value, previous isobaric threats caused by Zr and Mo were reduced to background levels whereas another potential atomic isobar, 96Ru+, became completely harmless to the new selenium analyte. The new method underwent a strict validation procedure where the recovery of a suitable certified reference material was examined and the obtained sample data were compared with those produced by a credible external laboratory who analyzed the same set of samples using a standardized HG-ICP-AES method. The validation results were satisfactory. The resultant limits of detection for arsenic and selenium were 5 ng L-1 and 60 ng L-1, respectively.

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This thesis describes the synthesis and use of an N-substituted ferrocene bearing a proline-derived chiral directing group and diastereoselective lithiation-electrophile quench of the pro-Sp hydrogen of the ferrocene to give planar chiral products in >95:5 dr. The auxiliary group is found to be stable to lithium bases of types RLi and R2NLi giving the same diastereoselectivity. The anti- epimer of the previously mentioned syn auxiliary induces lithiation of pro Rp rather than pro Sp hydrogen in >95:5 dr. Upon electrophile quench and elimination, the enantiomer of the syn-derived planar chiral imidazolone is obtained. Hence, this method provides a practical way to prepare planar chiral enantiomers in this series without the use of a more expensive D-proline derived starting material. The syn and anti epimers have β, γ-stereogenic centers and the origin of stereoselectivity in lithiation appears to be driven by the conformational bias exerted by the β-silyloxy moiety in each chiral auxiliary. In the thesis, this conclusion is supported using insensitivity of lithiation selectivity to the bulkiness of the base, comparison of enantiomers, deuteration experiments, nOe difference studies and computational modeling of the ground states and lithiation transition states for both substrates. The products are then converted to ligand precursors to make iridium and rhodium complexes. Among them, one of the cationic iridium complex is found to be effective in the asymmetric hydrogenation of 2-substituted quinolines with enantioselectivities up to 80% at pressures as low as 5 atm.

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This thesis describes the use of an L−proline-derived chiral auxiliary for diastereoselective lithiation and ligand synthesis. Such compounds have been utilized in the Metallinos research group previously for the synthesis of N−substituted planar chiral ferrocenes. The first project describes the use of this chiral auxiliary as a directing group for N−benzyl substitution, providing products in up to 10:1 diastereomeric ratio (dr). These derivatives may serve as chiral ylidene precursors to serve as ligands in transition metal catalysis. In addition, an N−substituted planar chiral ferrocene ylidene ligand derived from the same chiral auxiliary was used to prepare rhodium complexes that were explored as potential catalysts for asymmetric hydroformylation.