Advanced Separations by Specialized Sorbents by Ecaterina Stela Dragan

By Ecaterina Stela Dragan

Advanced Separations via really good Sorbents opens a brand new window into sorbent fabrics, featuring basic ideas for his or her syntheses and adsorption houses. The booklet offers complicated strategies used to create really expert sorbents with quite a lot of services that may be used to reinforce the separation and/or purification of helpful bioactive compounds, heavy metals, dyes, and different elements.

It discusses the latest advancements within the box of separation tactics, masking really good sorbents reminiscent of monolith cryogels, composite hydrogels, metal-impregnated ion exchangers, and molecularly imprinted polymers.

The booklet offers a complete dialogue of the selectivity in separation strategies by means of composite fabrics in response to artificial polymers/biopolymers and inorganic debris. it's a accomplished source for tutorial and study scientists in addition to scholars attracted to the instruction, characterization, and alertness of specialised sorbents.

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Tetrahedron Lett. 42: 4349–4351. , R. Farnworth, A. Ohbayashi, and T. Takehisa. 2003. Compositional effects on mechanical properties of nanocomposite hydrogels composed of poly(N,Ndimethylacrylamide) and clay. Macromolecules 36: 5732–5741. Haraguchi, K. J. Li. 2006. Mechanical properties and structure of polymer-clay nanocomposite gels with high clay content. Macromolecules 39: 1898–1905. , K. Murata, and T. Takehisa. 2013. Stimuli-responsive properties of nanocomposite gels comprising (2-methoxyethylacrylate-co-N,N-dimethylacrylamide) copolymer-clay networks.

Mikhaleva. 2003. Complexation of copper(II) ions with imidazole–carboxylic polymeric systems. J. Polym. Sci. 41: 2256–2263. , C. Odawara, R. Yokoyama, H. Saitoh, T. Yamauchi, and N. Tsubokawa. 2004. Grafting of zwitterion-type polymers on to silica gel surface and their properties. React. Funct. Polym. 61: 153–161. A. Öktem, Z. A. Tuncel. 1999. Immobilization of catalase in poly(isopropylacrylamide-co-hydroxyethylmethacrylate) thermally reversible hydrogels. Polym. Int. 48: 879–884. R. de Tacconi, and K.

12 Sorption (a) and desorption (b) of copper ions by amphoteric cryogel ACG-334. carboxylic groups of cryogels when aqueous solutions of metal salts pass through the gel specimen. The dynamic sorption capacity of amphoteric cryogels with respect to copper, nickel, and cobalt ions was evaluated. 55%. Dynamic exchange capacity of cryogels was in the range of 350–400 mg/L. Desorption of metal ions from cryogel volume was provided by disodium salt of ethylenediaminetetraacetic acid. The extracted amount of metal ions was equal to 75%–80%.

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