By Michael Niaounakis
Biopolymers: functions and developments provides an up to date precis of the various industry purposes of biopolymers characterised via biodegradability and sustainability. It contains tables with the economic names and homes of every biopolymer relatives, besides biopolymers for every advertising phase, not just providing all of the significant marketplace avid gamers, but additionally highlighting traits and new advancements in items.
The publication contains a thorough breakdown of the sizeable variety of program components, together with scientific and pharmaceutical, packaging, building, car, and lots of extra, giving engineers serious fabrics info in a space which has characteristically been extra restricted than traditional polymers.
In addition, the ebook makes use of fresh patent info to express the most recent functions and strategies within the region, therefore additional illustrating the swift velocity of improvement and want for highbrow estate for corporations engaged on new and leading edge products.
- Provides an up to date precis of the various industry purposes of biopolymers characterised by way of biodegradability and sustainability
- Includes tables with the industrial names and houses of every biopolymer kin, in addition to biopolymers for every advertising segment
- Presents an intensive breakdown of the gigantic variety of program parts, together with clinical and pharmaceutical, packaging, development, automobile, and lots of more
- Uses contemporary patent details to show the newest functions and strategies within the zone, therefore additional illustrating the swift velocity of improvement and wish for highbrow property
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Extra resources for Biopolymers : applications and trends
Suitable diacids include adipic acid, succinic acid, azelaic acid, and glutaric acid, etc. Suitable polyols include ethylene glycol, glycerol, 1,4-butanediol, 1,2-propanediol, 1,6-hexanediol,1,10-dodecanediol, etc. Most of bio-based polyols for bio-based PUs are synthesized from vegetable oils. ). 1; n is about 50 to about 150; R1 is independently (C2–C20)alkylene; R2 is independently hydrogen, or (C6–C10)aryl(C1–C6)alkyl; R3 is independently hydrogen, (C1–C6)alkyl, (C2–C6)alkenyl, (C2–C6)alkynyl, or (C6–C10)aryl(C1–C6)alkyl; and R4 is independently (C2–C20)alkylene; comprising one or more subunits of the formula (I) and one or more subunits of the formula (II): and one or more subunits of the formula (II): wherein the combined number of subunits (I) and (II) is about 50 to about 150.
USA) Containers for packaging food products, soft drinks, alcoholic beverages, detergents, cosmetics, pharmaceutical products, and edible oils Bio-PET (70% terephthalic acid and 30% of monoethylene glycol, MEG Globio FKuR Kunststoff GmbH (DE), distributor in Europe Bottles, films, automotive, and other injection molding applications PTT Sorona® Du Pont (USA) Fibers, multifilament surgical device (suture, mesh, sternal closure device, cable, and tape) PTT Biomax® PTT 1100 Biomax® PTT 1002 Du Pont (USA) Biomax® PTT 1002: packaging and industrial applications; Biomax® PTT 1100: injection molded containers, cosmetic packaging, and household plumbing equipment PET, poly(ethylene terephthalate); PTT, poly(trimethylene terephthalate).
Initially PTT was intended for the carpeting market but due to its processability like spinning and dyeing properties, it resulted to be suitable for the fiber market in the fields of sportswear and active wear as well [71,72]. 30 PTT is made by polycondensation of 1,3-propanediol and either terephthalic acid or dimethyl terephthalate. This polymer has attracted the attention in the recent years after the development of production of 1,3-propanediol from starch-derived glucose, a renewable resource (2001, WO0112833 A2, DU PONT).
Biopolymers : applications and trends by Michael Niaounakis