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Rhodium phosphine

The processiag costs associated with separation and corrosion are stiU significant ia the low pressure process for the process to be economical, the efficiency of recovery and recycle of the rhodium must be very high. Consequently, researchers have continued to seek new ways to faciUtate the separation and confine the corrosion. Extensive research was done with rhodium phosphine complexes bonded to soHd supports, but the resulting catalysts were not sufficiently stable, as rhodium was leached iato the product solution (27,28). A mote successful solution to the engineering problem resulted from the apphcation of a two-phase Hquid-Hquid process (29). The catalyst is synthesized with polar -SO Na groups on the phenyl rings of the triphenylphosphine. [Pg.167]

Tbe discovery of the catalytic properties of [RhCl(PPh3)3] naturally brought about a widespread search for other rhodium phosphines with catalytic activity. One of those which was found, also in Wilkinson s laboratory, was trans-[Rh(CO)H(PPh3)3 which can conveniently be... [Pg.1134]

Dialdehydes 8 have been converted to y-lactones 9 in the presence of a rhodium phosphine complex as catalyst. The example shown below demonstrates that this reaction works also with aldehydes that contain a-hydrogen atoms. [Pg.51]

Hydroformylation is an important industrial process carried out using rhodium phosphine or cobalt carbonyl catalysts. The major industrial process using the rhodium catalyst is hydroformylation of propene with synthesis gas (potentially obtainable from a renewable resource, see Chapter 6). The product, butyraldehyde, is formed as a mixture of n- and iso- isomers the n-isomer is the most desired product, being used for conversion to butanol via hydrogenation) and 2-ethylhexanol via aldol condensation and hydrogenation). Butanol is a valuable solvent in many surface coating formulations whilst 2-ethylhexanol is widely used in the production of phthalate plasticizers. [Pg.110]

This H-transfer reduction with sodium formate and employing catalysis by a water-soluble rhodium-phosphine catalyst yields dimethyl methylsuccinate [117]. [Pg.509]

Scheme 6-3 Oxidative addition of water to rhodium phosphine complexes... Scheme 6-3 Oxidative addition of water to rhodium phosphine complexes...
Hydroboration of styrene derivatives has been extensively studied, and perhaps these are the best substrates to consider in a discussion of the efficiency and selectivity of the catalysts (Table 1-1). A neutral rhodium-phosphine complex... [Pg.302]

Hydroaminomethylation of alkenes occurred to give both n- and /. so aliphatic amines catalyzed by [Rh(cod)Cl]2 and [Ir(cod)Cl]2 with TPPTS in aqueous NH3 with CO/H2 in an autoclave. The ratio of n-and /.soprimary amines ranged from 96 4 to 84 16.178 The catalytic hydroaminomethylation of long-chain alkenes with dimethylamine can be catalyzed by a water-soluble rhodium-phosphine complex, RhCl(CO) (Tppts)2 [TPPTS P(m-C6H4S03Na)3], in an aqueous-organic two-phase system in the presence of the cationic surfactant cetyltrimethy-lammonium bromide (CTAB) (Eq. 3.43). The addition of the cationic surfactant CTAB accelerated the reaction due to the micelle effect.179... [Pg.77]

Rhodium also has been reported as a catalyst for [2+2+2] alkyne cycloaddition in water. Uozumi et al. explored the use of an amphiphilic resin-supported rhodium-phosphine complex as catalyst (Eq. 4.60). The immobilized rhodium catalyst was effective for the [2+2+2] cycloaddition of internal alkynes in water,113 although the yields of products were not satisfactory. [Pg.131]

Oheme and co-workers investigated335 in an aqueous micellar system the asymmetric hydrogenation of a-amino acid precursors using optically active rhodium-phosphine complexes. Surfactants of different types significantly enhance both activity and enantioselectivity provided that the concentration of the surfactants is above the critical micelle concentration. The application of amphiphilized polymers and polymerized micelles as surfactants facilitates the phase separation after the reaction. Table 2 shows selected hydrogenation results with and without amphiphiles and with amphiphilized polymers for the reaction in Scheme 61.335... [Pg.119]

Some general reviews on hydrogenation using transition metal complexes that have appeared within the last five years are listed (4-7), as well as general reviews on asymmetric hydrogenation (8-10) and some dealing specifically with chiral rhodium-phosphine catalysts (11-13). The topic of catalysis by supported transition metal complexes has also been well reviewed (6, 14-29), and reviews on molecular metal cluster systems, that include aspects of catalytic hydrogenations, have appeared (30-34). [Pg.321]

SHOP [Shell Higher Olefins Process] A process for producing a-olefins by oligomerizing ethylene, using a proprietary rhodium/phosphine catalyst. The a-olefins can then be iso-merized to internal olefins as required. Invented by W. Keim in the Institut fur Technische Chemie und Petrolchemie, Aachen, in the 1970s. The first plant was built in Geismar, LA, in 1979 the second in Stanlow, Cheshire, in 1982. Licensed worldwide by a consortium of Union Carbide, Davy-McKee, and Johnson Matthey. [Pg.244]

In 1997, Miyaura and co-workers reported the nonasymmetric version of 1,4-addition of aryl- and alkenylboronic acids to a,/ -unsaturated ketones using rhodium-phosphine complex as the catalyst.97 Later, Hayashi and Miyaura realized the asymmetric 1,4-addition with high catalytic activity and enantioselectivity.98 In the presence of ( y)-BINAP, the reaction of 2-cyclohexenone with 2.5 equiv. of phenylboronic acid gave (A)-3-phenylcyclohexanone with 97% ee (BINAP = 2,2 -bis (diphenylphosphino)-l,l -binaphthyl Scheme 29).99... [Pg.384]

A simple method for the in-situ preparation of Wilkinson-type catalysts consists of the addition of the appropriate amount of the triarylphosphine to the rhodium dimers, [Rh(/<-Cl)(diene) 2 or Rh(//-Cl)(cyclooctene)2]2, according to Eqs. (4) and (5). The best results are usually obtained for a rhodium/phosphine ratio of 1 2. [Pg.14]

In the hydrogenation of alkenes, rhodium-, ruthenium- and iridium-phosphine catalysts are typically used [2-4]. Rhodium-phosphine complexes, such as Wilkinson s catalyst, are effective for obtaining alkanes under atmospheric pres-... [Pg.631]

Initially, research focused on the use of C2-symmetric rhodium and ruthenium-phosphine and phosphinite complexes a rhodium-phosphine complex 3 (Fig. 30.2) was used in the first reported enantioselective hydrogenation of substrate 1 (Table 30.1, entry 1) [1],... [Pg.1050]

Brunner, Leitner and others have reported the enantioselective transfer hydrogenation of alpha-, beta-unsaturated alkenes of the acrylate type [50]. The catalysts are usually rhodium phosphine-based and the reductant is formic acid or salts. The rates of reduction of alkenes using rhodium and iridium diamine complexes is modest [87]. An example of this reaction is shown in Figure 35.8. Williams has shown the transfer hydrogenation of alkenes such as indene and styrene using IPA [88]. [Pg.1235]

In one example, carbonylation of allylamine catalyzed by rhodium phosphine (1,4-diphos) gave a dihydropyr-... [Pg.74]


See other pages where Rhodium phosphine is mentioned: [Pg.293]    [Pg.165]    [Pg.187]    [Pg.141]    [Pg.1003]    [Pg.1564]    [Pg.79]    [Pg.109]    [Pg.110]    [Pg.14]    [Pg.15]    [Pg.243]    [Pg.74]    [Pg.45]    [Pg.47]    [Pg.263]    [Pg.365]    [Pg.368]    [Pg.383]    [Pg.388]    [Pg.9]    [Pg.418]    [Pg.1166]    [Pg.1507]    [Pg.1583]    [Pg.384]    [Pg.394]    [Pg.496]   
See also in sourсe #XX -- [ Pg.5 ]

See also in sourсe #XX -- [ Pg.103 , Pg.108 , Pg.110 , Pg.113 , Pg.116 , Pg.214 , Pg.690 , Pg.701 ]




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By rhodium phosphine complexes

Carbon monoxide carbonyl-phosphine rhodium

Carbonyl compounds phosphine rhodium complexes

Cationic rhodium-phosphine

Cationic rhodium-phosphine complexes

Chelating phosphine rhodium

Ferrocenyl-phosphine-rhodium complexe

Homogeneous Rhodium-Chiral Phosphine Catalyst Systems

Hydroformylation rhodium-phosphine complex catalytic

Hydroformylation water-soluble rhodium-phosphine complex

Hydrogenation rhodium-phosphine complexes

Hydroxides rhodium-phosphine complexes

Ligand phosphine-rhodium complex

Phosphine anchored rhodium catalyst

Phosphine cobalt, iridium, and rhodium complexes

Phosphine complexes of rhodium

Phosphine palladium and rhodium complexes

Phosphine rhodium complexes

Phosphine rhodium hydroformylation, catalytic

Phosphine, iridium complex rhodium complexes

Phosphine-metal complexes rhodium

Phosphine-modified rhodium catalysts

Phosphine-phosphite rhodium catalysts

References to phosphine complexes under the headings of Rhodium terms Links

Rhodium Phosphine Catalyzed Arylation of Imines

Rhodium catalysts containing sulfonated phosphine

Rhodium catalysts phosphine-phosphite ligands

Rhodium complex catalysts phosphine complexes

Rhodium complexes carbonyl phosphine halides

Rhodium complexes monodentate tertiary phosphine

Rhodium complexes phosphine-sulfoxide

Rhodium complexes tertiary phosphine

Rhodium complexes with phosphine ligands

Rhodium containing cationic phosphines

Rhodium hydroformylation catalysts phosphine modified

Rhodium phosphine catalyst, hydroformylation

Rhodium phosphine catalysts, chiral

Rhodium phosphine complex catalyst

Rhodium phosphine complexes as catalysts

Rhodium phosphine ligand anchored

Rhodium phosphine ligands

Rhodium phosphine modified complexes

Rhodium phosphine-free catalyst

Rhodium sulfonated phosphine ligand

Rhodium-catalysed reactions phosphine complexes

Rhodium-catalyzed hydrogenation phosphine ligands

Rhodium-chiral phosphine catalysts homogeneous

Rhodium-chiral phosphine catalysts imines

Rhodium-phosphine catalysts

Rhodium-phosphine catalysts achiral

Rhodium-phosphine catalysts asymmetric hydrogenation

Rhodium-phosphine catalyzed hydroformylation, mechanisms

Rhodium-phosphine complex catalytic systems

Rhodium-phosphine complex catalytic systems catalysis

Rhodium-phosphine complexes, reaction

Rhodium-phosphine complexes, reaction kinetics

Rhodium-phosphine system

Ruthenium complexes, reactions rhodium phosphine system

Water-Soluble Phosphines and Rhodium Recovery

Water-Soluble Rhodium-Phosphine Complex Catalytic Systems

Water-soluble catalyst, rhodium-phosphine

Water-soluble catalyst, rhodium-phosphine complex systems

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