Bio-based poly(butylene furandicarboxylate-co-butylene 2,5-thiophenedicarboxylate): synthesis, thermal properties, crystallization properties and mechanical properties
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[1] Shubham Utekar,et al. Polylactic acid (PLA) membrane—significance, synthesis, and applications: a review , 2022, Polymer Bulletin.
[2] Joemer A. Adorna,et al. Biodegradable polyhydroxybutyrate/cellulose/calcium carbonate bioplastic composites prepared by heat‐assisted solution casting method , 2021, Journal of Applied Polymer Science.
[3] M. J. Mochane,et al. The effect of expanded graphite/clay nanoparticles on thermal, rheological, and fire‐retardant properties of poly(butylene succinate) , 2021, Polymer Composites.
[4] A. Srinivasan,et al. Design and development of Schiff’s base (SB)-modified polylactic acid (PLA) antimicrobial film for packaging applications , 2021, Polymer Bulletin.
[5] Guoqiang Wang,et al. Synthesis and characterization of bio‐based polyesters derived from 1,10‐decanediol , 2021 .
[6] F. Malz,et al. Unraveling the cause for the unusual processing behavior of commercial partially bio‐based poly(butylene succinates) and their stabilization , 2021, Journal of Applied Polymer Science.
[7] Guangyuan Zhou,et al. High T g and tough poly(butylene 2,5‐thiophenedicarboxylate‐ co ‐1,4‐cyclohexanedimethylene 2,5‐thiophenedicarboxylate)s: Synthesis and characterization , 2020, Journal of Applied Polymer Science.
[8] M. Jiang,et al. Bio‐based succinic acid: an overview of strain development, substrate utilization, and downstream purification , 2019, Biofuels, Bioproducts and Biorefining.
[9] Shaohua Wu,et al. A facile method to synthesize bio-based and biodegradable copolymers from furandicarboxylic acid and isosorbide with high molecular weights and excellent thermal and mechanical properties , 2019, Polymer Chemistry.
[10] Jinggang Wang,et al. A mild method to prepare high molecular weight poly(butylene furandicarboxylate-co-glycolate) copolyesters: effects of the glycolate content on thermal, mechanical, and barrier properties and biodegradability , 2019, Green Chemistry.
[11] L. Salusjärvi,et al. Biotechnological production of glycolic acid and ethylene glycol: current state and perspectives , 2019, Applied Microbiology and Biotechnology.
[12] V. Siracusa,et al. Ordered structures of poly(butylene 2,5-thiophenedicarboxylate) and their impact on material functional properties , 2018, European Polymer Journal.
[13] R. Balart,et al. High toughness poly(lactic acid) (PLA) formulations obtained by ternary blends with poly(3-hydroxybutyrate) (PHB) and flexible polyesters from succinic acid , 2018, Polymer Bulletin.
[14] P. Vaz,et al. Inside PEF: Chain Conformation and Dynamics in Crystalline and Amorphous Domains , 2018 .
[15] V. Siracusa,et al. Poly(butylene 2,5-thiophenedicarboxylate): An Added Value to the Class of High Gas Barrier Biopolyesters , 2018, Polymers.
[16] Á. Alegría,et al. Molecular dynamics of fully biobased poly(butylene 2,5-furanoate) as revealed by broadband dielectric spectroscopy , 2017 .
[17] V. Siracusa,et al. Novel fully biobased poly(butylene 2,5-furanoate/diglycolate) copolymers containing ether linkages: Structure-property relationships , 2016 .
[18] Zhenhua Li,et al. Furan-based co-polyesters with enhanced thermal properties: poly(1,4-butylene-co-1,4-cyclohexanedimethylene-2,5-furandicarboxylic acid) , 2016 .
[19] A. Gandini,et al. Progress of Polymers from Renewable Resources: Furans, Vegetable Oils, and Polysaccharides. , 2016, Chemical reviews.
[20] R. Hagiwara,et al. The Discrete AlF52– Fluoroaluminate Anion in the Structure of [Tetraethylammonium]2[AlF5](H2O)2 , 2015 .
[21] Jorge F. J. Coelho,et al. Biobased polyesters and other polymers from 2,5-furandicarboxylic acid: a tribute to furan excellency , 2015 .
[22] Paola Marchese,et al. Fully biobased poly(propylene 2,5-furandicarboxylate) for packaging applications: excellent barrier properties as a function of crystallinity , 2015 .
[23] William J. Koros,et al. Carbon Dioxide Sorption and Transport in Amorphous Poly(ethylene furanoate) , 2015 .
[24] M. Dam,et al. Isothermal Crystallization Kinetics of Poly (Ethylene 2,5‐Furandicarboxylate) , 2015 .
[25] Ayusman Sen,et al. Chemical conversion pathways for carbohydrates , 2015 .
[26] Archana Jain,et al. Selective oxidation of 5-hydroxymethyl-2-furfural to furan-2,5-dicarboxylic acid over spinel mixed metal oxide catalyst , 2015 .
[27] D. Bikiaris,et al. Evaluation of polyesters from renewable resources as alternatives to the current fossil-based polymers. Phase transitions of poly(butylene 2,5-furan-dicarboxylate) , 2014 .
[28] P. Dubois,et al. Biobased poly(butylene 2,5-furandicarboxylate) and poly(butylene adipate-co- butylene 2,5-furandicarboxylate)s: From synthesis using highly purified 2,5- furandicarboxylic acid to thermo-mechanical properties , 2014 .
[29] A. M. D. Ilarduya,et al. Renewable terephthalate polyesters from carbohydrate-based bicyclic monomers , 2014 .
[30] S. Caillol,et al. Synthesis of bio-based building blocks from vegetable oils: a platform chemicals approach , 2014 .
[31] D. S. Es,et al. High molecular weight poly(ethylene-2,5-furanoate); critical aspects in synthesis and mechanical property determination , 2013 .
[32] Stephen A. Miller. Sustainable Polymers: Opportunities for the Next Decade. , 2013, ACS macro letters.
[33] P. Dubois,et al. Biobased polyesters with composition-dependent thermomechanical properties: synthesis and characterization of poly(butylene succinate-co-butylene azelate). , 2013, Biomacromolecules.
[34] Ed de Jong,et al. Hydroxymethylfurfural, a versatile platform chemical made from renewable resources. , 2013, Chemical reviews.
[35] M. Gazzano,et al. Poly(butylene 2,5-furan dicarboxylate), a Biobased Alternative to PBT: Synthesis, Physical Properties, and Crystal Structure , 2013 .
[36] Jiping Ma,et al. Synthesis and crystallinity of poly(butylene 2,5-furandicarboxylate) , 2012 .
[37] P. Dubois,et al. High molecular weight poly(butylene succinate-co-butylene furandicarboxylate) copolyesters: from catalyzed polycondensation reaction to thermomechanical properties. , 2012, Biomacromolecules.
[38] Guangyuan Zhou,et al. A series of furan‐aromatic polyesters synthesized via direct esterification method based on renewable resources , 2012 .
[39] Jiping Ma,et al. The copolymerization reactivity of diols with 2,5-furandicarboxylic acid for furan-based copolyester materials , 2012 .
[40] A. Gandini,et al. Synthesis and characterization of poly(2,5-furan dicarboxylate)s based on a variety of diols , 2011 .
[41] G. Wang,et al. Partially bio-based and tough polyesters, poly(ethylene 2,5-thiophenedicarboxylate-co-1,4-cyclohexanedimethylene 2,5-thiophenedicarboxylate)s , 2019, Express Polymer Letters.
[42] J. Ji,et al. Poly(butylene 2,5-furandicarboxylate-ε-caprolactone): A new bio-based elastomer with high strength and biodegradability , 2017 .
[43] M. Delgado,et al. Tailored design of renewable copolymers based on poly(1,4-butylene 2,5-furandicarboxylate) and poly(ethylene glycol) with refined thermal properties , 2017 .
[44] SHORT discrete AlF 52− fluoroaluminate anion in the structure of , 2022 .