Copolycarbonates of bio-based rigid isosorbide and flexible 1,4-Cyclohexanedimethanol (cas 105-08-8): Merits over bisphenol-A based polycarbonates
-
Add time:08/15/2019 Source:sciencedirect.com
From an industrial/engineering point of view, the greatest demerit of solely isosorbide (ISB)-based polycarbonate is its fragility; this is considerably overcome in this study by using a dual-diol strategy with 1,4-cyclohexanedimethanol (CHDM). A series of copolycarbonates of ISB, a bio-derived diol with a rigid heterocyclic structure, and ductile CHDM monomers with diphenyl carbonate were prepared by transesterification polymerization. The weight-average molecular weight of the polycarbonates gradually decreases as the ratio of ISB increases; however, their Tg and storage modulus increase. The ultimate elongation of the copolycarbonates is enhanced from 4.6 to 20% as the content of CHDM is increased from 30 to 80 mol%. ISB content greater than 50 mol% makes the copolycarbonates strong but brittle, and ISB content less than 50 mol% makes the copolycarbonates ductile but soft. The polycarbonate with 70/30 mol% of ISB/CHDM shows a 1.25-fold higher Young's modulus, 1.05-fold higher ultimate tensile strength, and one-grade higher pencil hardness than the bisphenol-A (BPA)-based polycarbonate. Interestingly, the hydrophilic ISB content does not affect the degree of hydrophilicity of the copolycarbonate samples. Water droplet contact angles are in the range of 81–87°, comparable to that of the BPA-based polycarbonate.
We also recommend Trading Suppliers and Manufacturers of 1,4-Cyclohexanedimethanol (cas 105-08-8). Pls Click Website Link as below: cas 105-08-8 suppliers
Prev:Fibers spun from 1,4-Cyclohexanedimethanol (cas 105-08-8)-modified polyethylene terephthalate resin
Next:Material behaviourNon-isothermal cold crystallization kinetics of poly(ethylene glycol-co-1,4-Cyclohexanedimethanol (cas 105-08-8) terephthalate) (PETG) copolyesters with different compositions) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Enzymatic separation of cis/trans 1,4-Cyclohexanedimethanol (cas 105-08-8) mixtures by mono- and polytransesterification08/22/2019
- Surface hydrophilic modification of acrylonitrile-butadiene-styrene terpolymer by poly(ethylene glycol-co-1,4-Cyclohexanedimethanol (cas 105-08-8) terephthalate): Preparation, characterization, and properties studies08/21/2019
- Full Length ArticleCompatibilization of acrylonitrile-butadiene-styrene terpolymer/poly(ethylene glycol-co-1,4-Cyclohexanedimethanol (cas 105-08-8) terephthalate) blend: effect on morphology, interface, mechanical properties and hydrophilicity08/20/2019
- Alkali resistance of poly(ethylene terephthalate) (PET) and poly(ethylene glycol-co-1,4-Cyclohexanedimethanol (cas 105-08-8) terephthalate) (PETG) copolyesters: The role of composition08/19/2019
- Modification of poly(ethylene 2,5-furandicarboxylate) (PEF) with 1, 4-cyclohexanedimethanol: Influence of stereochemistry of 1,4-cyclohexylene units08/18/2019
- Synthesis and properties of poly(1,4-cyclohexanedimethylene-co-isosorbide terephthalate), a biobased copolyester with high performances08/17/2019
- Material behaviourNon-isothermal cold crystallization kinetics of poly(ethylene glycol-co-1,4-Cyclohexanedimethanol (cas 105-08-8) terephthalate) (PETG) copolyesters with different compositions08/16/2019
- Fibers spun from 1,4-Cyclohexanedimethanol (cas 105-08-8)-modified polyethylene terephthalate resin08/14/2019
- Synthesis and crystallization of new fully renewable resources-based copolyesters: Poly(1,4-Cyclohexanedimethanol (cas 105-08-8)-co-isosorbide 2,5-furandicarboxylate)08/13/2019


