Enzyme-Catalyzed Synthesis of Polymers

Enzyme-Catalyzed Synthesis of Polymers
Title Enzyme-Catalyzed Synthesis of Polymers PDF eBook
Author Shiro Kobayashi
Publisher Springer Science & Business Media
Pages 278
Release 2006-01-12
Genre Science
ISBN 9783540292128

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Enzyme-Catalyzed Synthesis of Polymers

Enzyme-Catalyzed Synthesis of Polymers
Title Enzyme-Catalyzed Synthesis of Polymers PDF eBook
Author Shiro Kobayashi
Publisher Springer
Pages 254
Release 2009-09-02
Genre Science
ISBN 9783540816492

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Enzymatic Polymerization towards Green Polymer Chemistry

Enzymatic Polymerization towards Green Polymer Chemistry
Title Enzymatic Polymerization towards Green Polymer Chemistry PDF eBook
Author Shiro Kobayashi
Publisher Springer
Pages 389
Release 2019-04-04
Genre Technology & Engineering
ISBN 9811338132

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This book comprehensively covers researches on enzymatic polymerization and related enzymatic approaches to produce well-defined polymers, which is valuable and promising for conducting green polymer chemistry. It consists of twelve chapters, including the following topics: The three classes of enzymes, oxidoreductases, transferases and hydrolases, have been employed as catalysts for enzymatic polymerization and modification; Well-defined polysaccharides are produced by enzymatic polymerization catalyzed by hydrolases and transferases; Hydrolase-catalyzed polycondensation and ring-opening polymerization are disclosed to produce a variety of polyesters; Polyesters are synthesized by in-vivo acyltransferase catalysis produced by microorganisms; Enzymatic polymerization catalyzed by appropriate enzymes also produces polypeptides and other polymers; Poly(aromatic)s are obtained by enzymatic polymerization catalyzed by oxidoreductases and their model complexes; Such enzymes also induce oxidative polymerization of vinyl monomers; Enzymatic modification of polymers is achieved to produce functionalized polymeric materials; The enzymatic polymerization is a green process with non-toxic catalysts, high catalyst efficiency, green solvents and renewable starting materials, and minimal by-products; Moreover, renewable resources like biomass are potentially employed as a starting substrate, producing useful polymeric materials. This book is not only educative to young polymer chemists like graduate students but also suggestive to industrial researchers, showing the importance of the future direction of polymer synthesis for maintaining a sustainable society.

Modification of Polymers

Modification of Polymers
Title Modification of Polymers PDF eBook
Author Charles E. Carraher
Publisher Springer Science & Business Media
Pages 414
Release 2012-12-06
Genre Science
ISBN 1461337488

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The sheer volume of topics which could have been included under our general title prompted us to make some rather arbitrary decisions about content. Modification by irradiation is not included because the activity in this area is being treated elsewhere. We have chosen to emphasize chemical routes to modification and have striven to pre sent as balanced a representation of current activity as time and page count permit. Industrial applications, both real and potential, are included. Where appropriate, we have encouraged the contributors to include review material to help provide the reader with adequate context. The initial chapter is a review from a historical perspective of polymer modification and contains an extensive bibliography. The remainder of the book is divided into four general areas: Reactions and Preparation of Copolymers Reactions and Preparation of Block and Graft Copolymers Modification Through Condensation Reactions Applications The chemical modification of homopolymers such as polyvinylchlo ride, polyethylene, poly(chloroalkylene sulfides), polysulfones, poly chloromethylstyrene, polyisobutylene, polysodium acrylate, polyvinyl alcohol, polyvinyl chloroformate, sulfonated polystyrene; block and graft copolymers such as poly(styrene-block-ethylene-co-butylene block-styrene), poly(I,4-polybutadiene-block ethylene oxide), star chlorine-telechelic polyisobutylene, poly(isobutylene-co-2,3-dimethyl- 1,3-butadiene), poly(styrene-co-N-butylmethacrylate); cellulose, dex tran and inulin, is described.

Enzyme Catalyzed Synthesis in Ionic Liquids

Enzyme Catalyzed Synthesis in Ionic Liquids
Title Enzyme Catalyzed Synthesis in Ionic Liquids PDF eBook
Author Danelle Lynn Furlong
Publisher
Pages 54
Release 2007
Genre Addition polymerization
ISBN

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The synthesis of industrially important polymers can suffer from low conversion because of the need to use fairly harsh synthetic conditions including high temperature, high pressure and low pH. The use of enzymes as cataylsts can help to reduce the demand for these harsh synthetic conditions, allow the synthesis to be performed under more mild conditions, and are renewable catalysts. For this reason, enzymes can reduce chemical waste and offer a greener approach to polymer synthesis. One significant limitation in these reactions is the incompatibility of solvents needed for reactants, products, and catalyst. Enzymes are most active in an aqueous based solvent, while the polymer being produced typically has higher solubility in an organic based solvent. One method to bridge these contradicting conditions has been to use a new class of solvents known as ionic liquids. These solvents are comprised of various cations and anions to influence physical characteristics such as melting an boiling points, viscosity, and hydrophobicity. While polymer synthesis has been accomplished with several different ionic liquids and using enzymes as the catalyst, no in-depth characterization of enzymatic activity in ionic liquids has not been published.

Green Polymer Chemistry

Green Polymer Chemistry
Title Green Polymer Chemistry PDF eBook
Author H. N. Cheng
Publisher ACS Symposium
Pages 0
Release 2015
Genre Science
ISBN 9780841230651

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Green chemistry is the design of chemical products and processes that reduce or eliminate the use or generation of hazardous substances. Green polymer chemistry is an extension of green chemistry to polymer science and engineering. Developments in this area have been stimulated by health and environmental concerns, interest in sustainability, desire to decrease the dependence on petroleum, and opportunities to design and produce "green" products and processes. Major advances include new uses of biobased feedstock, green reactions, green processing methodologies, and green polymeric products. A current feature of green polymer chemistry is that it is both global and multidisciplinary. Thus, publications in this field are spread out over different journals in different countries. Moreover, a successful research effort may involve collaborations of people in various disciplines, such as organic chemistry, polymer chemistry, material science, chemical engineering, biochemistry, molecular biology, microbiology, enzymology, toxicology, environmental science, and analytical chemistry. This book combines the major interdisciplinary research in this field and is targeted for scientists, engineers, and students, who are involved or interested in green polymer chemistry. These may include chemists, biochemists, material scientists, chemical engineers, microbiologists, molecular biologists, enzymologists, toxicologists, environmental scientists, and analytical chemists. It can be a textbook for a course on green chemistry and also a reference book for people who need information on specific topics involving biocatalysis and biobased materials.

Biocatalysis in Polymer Chemistry

Biocatalysis in Polymer Chemistry
Title Biocatalysis in Polymer Chemistry PDF eBook
Author Katja Loos
Publisher John Wiley & Sons
Pages 421
Release 2011-07-18
Genre Technology & Engineering
ISBN 3527632557

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Searching for green and environmentally friendly polymerization methods by using enzymes? This first handbook on this hot and essential topic contains the whole chain of knowledge of biocatalysis in polymer chemistry in both a comprehensive and compact form. International leading experts cover all important aspects, from enzymatic monomer synthesis to polymer modification and degradation. While the major focus of the book is on enzymatic polymerizations of the polymer classes reported so far, industrial contributions are also included, making this invaluable reading for biochemists and polymer chemists working in academia and industry.