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Catalysts polymer supports

Frolov, Shabanova, and co-workers (37-39) studied the transition of a sol into a gel and the aggregate stability of colloidal silica. Their aim was to develop a technology for the production of highly-concentrated silica sols and to use them as binders, catalyst supports, polymer fillers, adsorbents, and so forth. Kinetic studies were made of polycondensation and gel formation in aqueous solutions of silicic acids. At the stage of particle growth, poly condensation proceeds in the diffusion-kinetic region. With changes in pH, temperature, concentration, and the nature of electrolytes,... [Pg.606]

Some catalyst supporting polymers have been accessed through grafting. Norbomene-functionalized silica and... [Pg.536]

Slotted plate for catalyst support designed with openings for vapor flow Ion exchanger fibers (reinforced ion exchange polymer) used as solid-acid catalyst None specified Hydrolysis of methyl acetate Evans and Stark, Eiir. Pat. Appl. EP 571,163 (1993) Hirata et al., Jap. Patent 05,212,290 (1993)... [Pg.1321]

Asymmetric Sharpless dihydroxylation of olefins using catalysts supported by polymers with heterocyclic fragments 98EJ021. [Pg.211]

Tullock C.W. et al.. Polyethylene and elastomeric polypropylene using alumina-supported bis(arene) titanium, zirconium, and hafnium catalysts, J. Polym. Sci, Part A, Polym. Chem., 27, 3063, 1989. Mueller G. and Rieger R., Propene based thermoplastic elastomers by early and late transition metal catalysis. Prog. Polym. Sci., 27, 815, 2002. [Pg.157]

This argument is confirmed by the study of CO pulse chemisorption by Biffis at al., mentioned above. In this piece of investigation, the authors prepared a 2% (w/w) palladium catalyst supported by Lewatit UCP 118, a macroreticular resin (nominal cld = 18 %) from Bayer. Its TEM characterization showed a remarkably heterogeneous distribution of the metal nanoclusters, which are apparently located close to the surface of the polymer nodules [62] (Figure 9). [Pg.211]

The choice of the metals is strictly related to the catalytic application. As we shall show later, the catal54ic reaction most commonly investigated with polymer supported M / CFP catalysts is hydrogenation (Table 3). The overwhelming majority of catalytic studies concerns the hydrogenation of alkenes and by far the most commonly employed metal is palladium, followed by platinum. Examples of rhodium and ruthenium hydrogenation catalysts supported on pol5uneric supports are very rare. [Pg.212]

Verdet and Stille1 employed brominated poly(phenylene oxide) intermediates in an effort to synthesize more stable catalyst supports containing (cyclopentadienyl)metal complexes. Treatment of poly(oxy-2,6-dimethyl-l,4-phenylene) with N-bromosuccinimide under photolytic conditions produced only the bromomethyl derivative if the D.F. did not exceed 0.35. Subsequent treatment of the bromomethylated polymer with sodium cyclopentadienide afforded the cyclopentadienyl functionalized polymer, 5, but the reaction was accompanied by crosslinking and it was not possible to remove the bromomethyl substituents quantitatively. [Pg.7]

Poly(styrene—divinylbenzene) copolymers can be used as catalyst supports. Attachment of catalytic groups to the polymer supports can be achieved by... [Pg.247]

More recently, a C02-soluble chromium(III)-porphyrin catalyst, (344), has been reported to initiate the copolymerization of C02 with CHO.980 Carbonate linkages of >90% are observed and Mw/Mn values are consistently low (1.1-1.4). Complex (344) is highly active, producing 3,900 g polymer/g [Cr] over 18 hours even higher activities have been achieved by supporting the catalyst on polymer beads.981... [Pg.57]

Nafion, a perfluorinated sulfonated polymer, is a typical example of an ion-exchangeable resin with high promise as a catalyst support. Its properties are significantly different from those of common polymers (stability towards strong bases, and strong oxidizing and reducing acids and thermal stability up to at least 120 °C if the counter ion is a proton, and up to 200-235 °C if it is a... [Pg.450]

Besides the conductive additive, TEG may sometimes be a very effective catalyst support, for example, in the catalytic active composite with conducting polymers for the new air-metal batteries, which we proposed [6],... [Pg.318]

Most of the more recent studies have concentrated on rhodium. An effective system for a gas-phase reaction was reported by Arai et al. (107). The catalyst support was silica gel, which was desirable for its high surface area properties (293 m3/g). This was covered with a polymer formed from styrene and divinylbenzene, either by emulsion (A) or by solution (B) polymerization. Each of these base materials was then functionalized by the reactions shown in Eq. (49). [Pg.48]

New approaches to catalyst recovery and reuse have considered the use of membrane systems permeable to reactants and products but not to catalysts (370). In an attempt to overcome the problem of inaccessibility of certain catalytic sites in supported polymers, some soluble rho-dium(I), platinum(II), and palladium(II) complexes with noncross-linked phosphinated polystyrene have been used for olefin hydrogenation. The catalysts were quantitatively recovered by membrane filtration or by precipitation with hexane, but they were no more active than supported... [Pg.367]


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See also in sourсe #XX -- [ Pg.102 , Pg.248 , Pg.257 , Pg.261 , Pg.266 ]

See also in sourсe #XX -- [ Pg.102 , Pg.248 , Pg.257 , Pg.261 , Pg.266 ]




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Aerobic Oxidation with Polymer-Supported Catalysts

Aldol polymer-supported catalysts

Asymmetric catalysis using polymer supported catalysts

Catalyst polymer-supported

Catalyst polymer-supported

Catalyst supports colloidal polymers

Catalyst supports polymer gels

Catalysts polymer supported metal colloids

Catalysts systems polymer-supported

Catalysts, transition-metal, polymer-supported

Cross-coupling reactions polymer support catalysts

Cyanides polymer-supported catalyst

Diels polymer-supported catalysts

Hydrogenation using polymer supported catalysts

Immobilization systems polymer support catalysts

Immobilized metal catalysts, polymer-supported

Insoluble polymer-supported catalyst

Ligand synthesis catalyst immobilization, polymer supports

Metallocene catalysts, polymer-supported

Nickel complexes polymer-supported catalysts

Oxidations using polymer supported catalysts

Phase-transfer catalysis polymer-supported catalysts

Phosphine ligands catalyst immobilization, polymer supports

Polymer Supported Metal Colloids as Catalyst

Polymer catalysts

Polymer electrolyte membrane fuel cell catalyst supports

Polymer supported metal catalysts

Polymer supported metal catalysts aldehyde

Polymer supported metal catalysts catalyst recycling

Polymer supported metal catalysts catalyst system

Polymer supported metal catalysts derivative

Polymer supported metal catalysts encapsulation

Polymer supported metal catalysts heterogenous catalyst

Polymer supported metal catalysts inorganic-organic hybrid

Polymer supported metal catalysts polybenzimidazole

Polymer supported metal catalysts preparation

Polymer supports for reagents, catalysts, and drug release

Polymer-Supported Asymmetric Aldol Catalysts

Polymer-Supported Diels-Alder Catalysts

Polymer-Supported Olefin Metathesis Catalysts for Organic and Combinatorial Synthesis

Polymer-supported Pd catalyst

Polymer-supported amine catalysts

Polymer-supported catalysts Lewis acids

Polymer-supported catalysts and reagents

Polymer-supported catalysts applications

Polymer-supported catalysts, example

Polymer-supported catalysts, example catalytic material

Polymer-supported chiral dendritic catalysts

Polymer-supported chiral molybdenum catalyst

Polymer-supported cinchona catalyst

Polymer-supported copper catalyst

Polymer-supported metal complex catalysts

Polymer-supported metathesis catalysts

Polymer-supported oxidation catalysts

Polymer-supported palladium-catalysts

Polymer-supported phase transfer catalyst stability

Polymer-supported phase-transfer catalysts

Polymer-supported phosphine palladium catalyst

Polymer-supported reagents transition metal catalysts

Polymer-supported scandium catalyst

Polymer-supported, acid catalyst, conjugate

Polymer-supported, acid catalysts, Heck reaction

Polymers as High-Loading Supports for Catalysts

Polymers hydrogenation catalyst supports

Polymers, as catalyst supports

Preparation of Polymer-supported Catalysts

Solid support catalysts polymer supports

Soluble polymer-supported catalysts

Synthesis of polymer supported catalyst

Synthesis of polymer-supported palladacycle catalyst

Transition metal catalysts polymer supported, stability

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