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Carbon hydrogels

Hydrogel membranes are particularly attractive because of high permeability and separation factor [300], and good stability for CO2/N2 separation [299], PVDF hollow fiber membrane modified by alkali was coated by PYA hydrogel on its surface and PVDF-PVA hydrogel membranes show better hydrophilic performance. For carbonate hydrogel (sodium carbonate concentration of 3.7 %) membrane, C02, concentration from 1.3 % to 0.6 % in feed gas could be decreased to 0.9-0.4 % at the outlet at 25 °C. [Pg.172]

Figure 17.6 Redox hydrogel approach to immobilizing multiple layers of a redox enzyme on an electrode, (a) Structure of the polymer, (b) Voltammograms for electrocatalytic O2 reduction by a carbon fiber electrode modified with laccase in the redox hydrogel shown in (a) (long tether) or a version with no spacer atoms in the tether between the backbone and the Os center (short tether). Reprinted with permission fi om Soukharev et al., 2004. Copyright (2004) American Chemical Society. Figure 17.6 Redox hydrogel approach to immobilizing multiple layers of a redox enzyme on an electrode, (a) Structure of the polymer, (b) Voltammograms for electrocatalytic O2 reduction by a carbon fiber electrode modified with laccase in the redox hydrogel shown in (a) (long tether) or a version with no spacer atoms in the tether between the backbone and the Os center (short tether). Reprinted with permission fi om Soukharev et al., 2004. Copyright (2004) American Chemical Society.
One-to-one random copolymers of acrylic acid with either hydroxyethyl acrylate (a hydrogel model) or methyl acrylate failed to protect insulin from release under gastric conditions (Figure 6). In the case of the hydrogel, the expected swelling due to exposure to water occurred, releasing insulin. The behavior of the ester copolymer led to the prediction that there should be no more than about four carbon atoms per carboxylic acid group in a repeat unit of the polymers. We have not been able to disprove this hypothesis thus far. [Pg.222]

Ogomi, D., Serizawa, T. and Akashi, M. (2005) Controlled release based on the dissolution of a calcium carbonate layer deposited on hydrogels. Journal of Controlled Release, 103, 315—323. [Pg.208]

Li H, Wang DQ, Liu BL, Gao LZ (2004) Synthesis of a novel gelatin-carbon nanotubes hybrid hydrogel. Colloids and Surfaces B-Biointerfaces 33 85-88. [Pg.262]

Using a glassy carbon electrode modified with a mercury film, Weber et al. [66] measured the association and dissociation rate constants for the complex formed between Pb + and the 18-crown-6 ether. It was found that Pb + forms a complex with 18-crown-6 with a stoichiometiy of 1 1 in both nitrate and perchlorate media. The formation constant, for the nitrate and perchlorate systems are (3.82 0.89) X 10 and (5.92 1.97) x lO mol Ls , respectively. The dissociation rate constants, are (2.83 0.66) x 10 with nitrate and (2.64 0.88) x 10 s with perchlorate as counter ion. In addition, the binding of Pb + with benzo-18-crown-6 embedded in a polymerized ciystalline colloidal array hydrogel has been also analyzed [67]. [Pg.45]

The advantage of template synthesis is that organo or hydrogelator templates can direct the shape-controlled synthesis of oxide nanotubes. Recent reports describe the use of carbon nanofibers as a template for the shape-controlled synthesis of zirconia, alumina and silica nanotubes [78]. The shape of vapor grown carbon nanofiber... [Pg.262]

Kunzler et al. (5) prepared silicone hydrogels containing vinyl carbonate end-capped with fluorinated polysiloxanes that had an oxygen permeability of at least about 120 Barters, a water content of at least about 20wt%, and high modulus. [Pg.525]


See other pages where Carbon hydrogels is mentioned: [Pg.731]    [Pg.731]    [Pg.13]    [Pg.529]    [Pg.873]    [Pg.184]    [Pg.534]    [Pg.598]    [Pg.603]    [Pg.606]    [Pg.613]    [Pg.621]    [Pg.623]    [Pg.410]    [Pg.195]    [Pg.106]    [Pg.529]    [Pg.172]    [Pg.36]    [Pg.195]    [Pg.255]    [Pg.106]    [Pg.185]    [Pg.158]    [Pg.642]    [Pg.205]    [Pg.7]    [Pg.260]    [Pg.844]    [Pg.125]    [Pg.199]    [Pg.335]    [Pg.344]    [Pg.103]    [Pg.108]    [Pg.177]    [Pg.382]    [Pg.228]    [Pg.425]    [Pg.125]    [Pg.197]   
See also in sourсe #XX -- [ Pg.291 ]




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