Bio-based polyesters: Recent progress and future prospects
暂无分享,去创建一个
Wencai Wang | Liqun Zhang | Qinan Zhang | Mengze Song | Yanyan Xu | Zhao Wang | Liqun Zhang | Wencai Wang | Zhao Wang | Qinan Zhang | Yan-Li Xu | Mengze Song
[1] M. Gazzano,et al. Fully biobased, elastomeric and compostable random copolyesters of poly(butylene succinate) containing Pripol 1009 moieties: Structure-property relationship , 2020 .
[2] Valentina Siracusa,et al. Bio-Polyethylene (Bio-PE), Bio-Polypropylene (Bio-PP) and Bio-Poly(ethylene terephthalate) (Bio-PET): Recent Developments in Bio-Based Polymers Analogous to Petroleum-Derived Ones for Packaging and Engineering Applications , 2020, Polymers.
[3] Gi Bae Kim,et al. Enhanced succinic acid production by Mannheimia employing optimal malate dehydrogenase , 2020, Nature Communications.
[4] T. Iwata,et al. Synthesis of biphenyl polyesters derived from divanillic acid, and their thermal and mechanical properties , 2020 .
[5] M. Piątek-Hnat,et al. The influence of of cross-linking process on the physicochemical properties of new copolyesters containing xylitol , 2020 .
[6] Zhiyong Wei,et al. ABA triblock copolyesters composed of poly(l-lactide) A hard blocks: A comparative study of amorphous and crystalline aliphatic polyesters as B soft blocks , 2020 .
[7] Hui Gao,et al. Random and Multiblock PBS Copolyesters Based on a Rigid Diol Derived from Naturally Occurring Camphor: Influence of Chemical Microstructure on Thermal and Mechanical Properties , 2020 .
[8] T. Reineke,et al. Next-generation polymers: Isosorbide as a renewable alternative , 2020 .
[9] Zhiyong Wei,et al. A biobased aliphatic polyester derived from 10-hydroxydecanoic acid: Molecular weight dependence of physical properties , 2020 .
[10] Mitra S. Ganewatta,et al. Sustainable polymers from biomass: Bridging chemistry with materials and processing , 2020 .
[11] Long Liu,et al. Biocatalytic production of 2,5-furandicarboxylic acid: recent advances and future perspectives , 2019, Applied Microbiology and Biotechnology.
[12] B. Stadler,et al. Properties of Novel Polyesters Made from Renewable 1,4‐Pentanediol , 2019, ChemSusChem.
[13] E. Lizundia,et al. A review on the thermomechanical properties and biodegradation behaviour of polyesters , 2019 .
[14] P. Dubois,et al. Tailoring the isothermal crystallization kinetics of isodimorphic poly (butylene succinate-ran-butylene azelate) random copolymers by changing composition , 2019, Polymer.
[15] P. Jannasch,et al. Synthesis, Life Cycle Assessment, and Polymerization of a Vanillin-Based Spirocyclic Diol toward Polyesters with Increased Glass-Transition Temperature , 2019, ACS Sustainable Chemistry & Engineering.
[16] D. Bikiaris,et al. Novel high Tg fully biobased poly(hexamethylene-co-isosorbide-2,5-furan dicarboxylate) copolyesters: Synergistic effect of isosorbide insertion on thermal performance enhancement , 2019, Polymer Degradation and Stability.
[17] Jinggang Wang,et al. Biodegradable Elastomer from 2,5-Furandicarboxylic Acid and ε-Caprolactone: Effect of Crystallization on Elasticity , 2019, ACS Sustainable Chemistry & Engineering.
[18] Edgar Gutiérrez-Fernández,et al. Evidence of a 2D-Ordered Structure in Biobased Poly(pentamethylene furanoate) Responsible for Its Outstanding Barrier and Mechanical Properties , 2019, ACS Sustainable Chemistry & Engineering.
[19] Siyuan Xu,et al. A green cascade polymerization method for the facile synthesis of sustainable poly(butylene-co-decylene terephthalate) copolymers , 2019, Polymer.
[20] A. Szymczyk,et al. Poly(ethylene furanoate) modified with dimerized fatty acid diol towards multiblock copolymers: Microstructure – Property relationship , 2019, Materials Today Communications.
[21] G. Floudas,et al. Chain Conformation, Molecular Dynamics, and Thermal Properties of Poly(n-methylene 2,5-furanoates) as a Function of Methylene Unit Sequence Length , 2019, Macromolecules.
[22] M. Carus,et al. Biobased Building Blocks and Polymers—Global Capacities, Production and Trends, 2018–2023 , 2019, Industrial Biotechnology.
[23] Liqun Zhang,et al. Renewable and super-toughened poly (butylene succinate) with bio-based elastomers: Preparation, compatibility and performances , 2019, European Polymer Journal.
[24] Paola Marchese,et al. Temperature-induced polymorphism in bio-based poly(propylene 2,5-furandicarboxylate) , 2019, Thermochimica Acta.
[25] 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.
[26] Zhiyong Wei,et al. Biobased long-chain aliphatic polyesters of 1,12-dodecanedioic acid with a variety of diols: Odd-even effect and mechanical properties , 2019, Materials Today Communications.
[27] Shaoying Liu,et al. Synthesis and characterization of poly(isosorbide-co-butylene 2,5-furandicarboxylate) copolyesters , 2019, European Polymer Journal.
[28] C. Xu,et al. Production of 2,5‐furandicarboxylic acid (FDCA) from starch, glucose, or high‐fructose corn syrup: techno‐economic analysis , 2019, Biofuels, Bioproducts and Biorefining.
[29] Shuai Sun,et al. Biodegradable copolyester poly(butylene-co-isosorbide succinate) as hot-melt adhesives , 2019, RSC advances.
[30] Mafalda S. Lima,et al. Cinnamic acid derivatives as promising building blocks for advanced polymers: synthesis, properties and applications , 2019, Polymer Chemistry.
[31] Zhiyong Wei,et al. High Molecular Weight Unsaturated Copolyesters Derived from Fully Biobased trans-β-Hydromuconic Acid and Fumaric Acid with 1,4-Butanediol: Synthesis and Thermomechanical Properties , 2019, ACS Sustainable Chemistry & Engineering.
[32] Stephen A. Miller,et al. Synthesis, characterization, and water-degradation of biorenewable polyesters derived from natural camphoric acid , 2019, Green Chemistry.
[33] D. Bikiaris,et al. Solid-State Polymerization of Poly(Ethylene Furanoate) Biobased Polyester, III: Extended Study on Effect of Catalyst Type on Molecular Weight Increase , 2019, Polymers.
[34] Jinggang Wang,et al. Biobased Amorphous Polyesters with High Tg: Trade-Off between Rigid and Flexible Cyclic Diols , 2019, ACS Sustainable Chemistry & Engineering.
[35] Yunqing Kang,et al. A Highly Elastic and Autofluorescent Poly(xylitol-dodecanedioic Acid) for Tissue Engineering. , 2019, ACS biomaterials science & engineering.
[36] P. Mizsey,et al. Terephthalic acid from renewable sources: early-stage sustainability analysis of a bio-PET precursor , 2019, Green Chemistry.
[37] N. Yan,et al. Production of Terephthalic Acid from Corn Stover Lignin. , 2019, Angewandte Chemie.
[38] A. Nan,et al. Clean production of new functional coatings of magnetic nanoparticles from sustainable resources , 2019, Journal of Cleaner Production.
[39] N. Guigo,et al. Synthesis and characterization of two new biobased poly(pentylene 2,5-furandicarboxylate-co-caprolactone) and poly(hexamethylene 2,5-furandicarboxylate-co-caprolactone) copolyesters with enhanced enzymatic hydrolysis properties , 2019, Polymer Degradation and Stability.
[40] Jing Wu,et al. An investigation of the thermal and (bio)degradability of PBS copolyesters based on isosorbide , 2019, Polymer Degradation and Stability.
[41] Dutta Kaberi Geeti,et al. Environmentally benign bio-based waterborne polyesters: Synthesis, thermal- and bio-degradation studies , 2019, Progress in Organic Coatings.
[42] Jinggang Wang,et al. Effects of Various 1,3-Propanediols on the Properties of Poly(propylene furandicarboxylate) , 2019, ACS Sustainable Chemistry & Engineering.
[43] A. Sousa,et al. Co-Polymers based on Poly(1,4-butylene 2,5-furandicarboxylate) and Poly(propylene oxide) with Tuneable Thermal Properties: Synthesis and Characterization , 2019, Materials.
[44] Xuebing Zhao,et al. Production of 2,5-furandicarboxylic acid (FDCA) from 5-hydroxymethylfurfural (HMF): recent progress focusing on the chemical-catalytic routes , 2018 .
[45] Shaoying Liu,et al. Synthesis and characterization of poly(ethylene 2,5-furandicarboxylate-co-ε-caprolactone) copolyesters , 2018, European Polymer Journal.
[46] Jinggang Wang,et al. Copolyesters developed from bio‐based 2,5‐furandicarboxylic acid: Synthesis, sequence distribution, mechanical, and barrier properties of poly(propylene‐ co ‐1,4‐cyclohexanedimethylene 2,5‐furandicarboxylate)s , 2018, Journal of Applied Polymer Science.
[47] Jing Wu,et al. Systematic Study of Thermal and (Bio)Degradable Properties of Semiaromatic Copolyesters Based on Naturally Occurring Isosorbide , 2018, ACS Sustainable Chemistry & Engineering.
[48] Zhiyong Wei,et al. Facile preparation of stereochemistry-controllable biobased poly(butylene maleate-co-butylene fumarate) unsaturated copolyesters: a chemoselective polymer platform for versatile functionalization via aza-Michael addition , 2018 .
[49] P. Dubois,et al. Modification of Poly(ethylene 2,5-furandicarboxylate) with Biobased 1,5-Pentanediol: Significantly Toughened Copolyesters Retaining High Tensile Strength and O2 Barrier Property. , 2018, Biomacromolecules.
[50] M. Xiao,et al. Nonstrained γ-Butyrolactone to High-Molecular-Weight Poly(γ-butyrolactone): Facile Bulk Polymerization Using Economical Ureas/Alkoxides , 2018, Macromolecules.
[51] Christoph Wittmann,et al. A bio-based route to the carbon-5 chemical glutaric acid and to bionylon-6,5 using metabolically engineered Corynebacterium glutamicum , 2018 .
[52] P. Dubois,et al. Poly(ethylene 2,5-furandicarboxylate-mb-poly(tetramethylene glycol)) multiblock copolymers: From high tough thermoplastics to elastomers , 2018, Polymer.
[53] D. Bikiaris,et al. Synthesis and characterization of novel poly(ethylene furanoate-co-adipate) random copolyesters with enhanced biodegradability , 2018, Polymer Degradation and Stability.
[54] M. Zhang,et al. Influence of ether linkage on the enzymatic degradation of PBS copolymers: Comparative study on poly (butylene succinate-co-diethylene glycol succinate) and poly (butylene succinate-co-butylene diglycolic acid). , 2018, International journal of biological macromolecules.
[55] P. Dubois,et al. Biobased Poly(ethylene-co-hexamethylene 2,5-furandicarboxylate) (PEHF) Copolyesters with Superior Tensile Properties , 2018, Industrial & Engineering Chemistry Research.
[56] Jinggang Wang,et al. Bio-based poly(butylene 2,5-furandicarboxylate)-b-poly(ethylene glycol) copolymers with adjustable degradation rate and mechanical properties: Synthesis and characterization , 2018, European Polymer Journal.
[57] Y. Kimura,et al. High-molecular-weight poly(1,2-propylene succinate): A soft biobased polyester applicable as an effective modifier of poly(l -Lactide) , 2018, Journal of Polymer Science Part A: Polymer Chemistry.
[58] Shaoying Liu,et al. Biobased copolyesters: Synthesis, structure, thermal and mechanical properties of poly(ethylene 2,5-furandicarboxylate-co-ethylene 1,4-cyclohexanedicarboxylate) , 2018, Polymer Degradation and Stability.
[59] Jinggang Wang,et al. Modification of Poly(butylene 2,5-furandicarboxylate) with Lactic Acid for Biodegradable Copolyesters with Good Mechanical and Barrier Properties , 2018, Industrial & Engineering Chemistry Research.
[60] T. Farmer,et al. Post-polymerization modification of bio-based polymers : Maximizing the high functionality of polymers derived from biomass , 2018 .
[61] Guangyuan Zhou,et al. Biobased multiblock copolymers: Synthesis, properties and shape memory behavior of poly(hexamethylene 2,5-furandicarboxylate)-b-poly(ethylene glycol) , 2018, Polymer Degradation and Stability.
[62] Xian Jun Loh,et al. Polyester elastomers for soft tissue engineering. , 2018, Chemical Society reviews.
[63] Fusheng Liu,et al. Preparation of biorenewable poly(γ-butyrolactone)-b-poly(L-lactide) diblock copolyesters via one-pot sequential metal-free ring-opening polymerization , 2018 .
[64] Stephen A. Miller,et al. The quest for high glass transition temperature bioplastics , 2018 .
[65] A. M. D. Ilarduya,et al. Hydroxyl-functionalized amphiphilic triblock copolyesters made of tartaric and lactic acids: Synthesis and nanoparticle formation , 2018 .
[66] Jinggang Wang,et al. Fully bio-based poly(propylene succinate-co-propylene furandicarboxylate) copolyesters with proper mechanical, degradation and barrier properties for green packaging applications , 2018 .
[67] Jinggang Wang,et al. Synthesis and Structure–Property Relationship of Biobased Biodegradable Poly(butylene carbonate-co-furandicarboxylate) , 2018 .
[68] Lin Li,et al. Catalytic cascade conversion of furfural to 1,4-pentanediol in a single reactor , 2018 .
[69] A. M. D. Ilarduya,et al. Isomannide-Containing Poly(butylene 2,5-furandicarboxylate) Copolyesters via Ring Opening Polymerization , 2018 .
[70] Jinggang Wang,et al. Fully bio‐based polyesters derived from 2,5‐furandicarboxylic acid (2,5‐FDCA) and dodecanedioic acid (DDCA): From semicrystalline thermoplastic to amorphous elastomer , 2018 .
[71] I. Krucinska,et al. Molecular and Supramolecular Changes in Polybutylene Succinate (PBS) and Polybutylene Succinate Adipate (PBSA) Copolymer during Degradation in Various Environmental Conditions , 2018, Polymers.
[72] A. M. D. Ilarduya,et al. Blocky poly(ɛ‐caprolactone‐co‐butylene 2,5‐furandicarboxylate) copolyesters via enzymatic ring opening polymerization , 2018 .
[73] Laura Sisti,et al. Biobased vanillic acid and ricinoleic acid: building blocks for fully renewable copolyesters , 2018 .
[74] Jinggang Wang,et al. From Furan to High Quality Bio-based Poly(ethylene furandicarboxylate) , 2018, Chinese Journal of Polymer Science.
[75] J. Koo,et al. Sustainable terpolyester of high Tg based on bio heterocyclic monomer of dimethyl furan-2,5-dicarboxylate and isosorbide , 2017 .
[76] Weidong Wu,et al. Preparation and Properties of Novel Thermoplastic Vulcanizate Based on Bio-Based Polyester/Polylactic Acid, and Its Application in 3D Printing , 2017, Polymers.
[77] V. Siracusa,et al. Novel Random PBS-Based Copolymers Containing Aliphatic Side Chains for Sustainable Flexible Food Packaging , 2017, Polymers.
[78] M. Kostoglou,et al. Effect of catalyst type on molecular weight increase and coloration of poly(ethylene furanoate) biobased polyester during melt polycondensation , 2017 .
[79] D. Bikiaris,et al. Solid-State Polymerization of Poly(ethylene furanoate) Biobased Polyester, I: Effect of Catalyst Type on Molecular Weight Increase , 2017, Polymers.
[80] B. Newell,et al. “Nonstrained” γ-Butyrolactone-Based Copolyesters: Copolymerization Characteristics and Composition-Dependent (Thermal, Eutectic, Cocrystallization, and Degradation) Properties , 2017 .
[81] Rafael Auras,et al. A roadmap towards green packaging: The current status and future outlook for polyesters in the packaging industry , 2017 .
[82] Á. Alegría,et al. Molecular dynamics of fully biobased poly(butylene 2,5-furanoate) as revealed by broadband dielectric spectroscopy , 2017 .
[83] G. Papageorgiou,et al. Solid-state structure and thermal characteristics of a sustainable biobased copolymer: Poly(butylene succinate-co-furanoate) , 2017 .
[84] Zhibo Li,et al. Selective Ring-Opening Polymerization of Non-Strained γ-Butyrolactone Catalyzed by A Cyclic Trimeric Phosphazene Base. , 2017, Angewandte Chemie.
[85] Jinggang Wang,et al. Synthesis of bio‐based poly(ethylene 2,5‐furandicarboxylate) copolyesters: Higher glass transition temperature, better transparency, and good barrier properties , 2017 .
[86] V. Sieber,et al. Chemoenzymatic Synthesis of a Novel Borneol-Based Polyester. , 2017, ChemSusChem.
[87] A. Ullah,et al. Synthesis of Fully Biobased Polyesters from Plant Oil , 2017 .
[88] T. Farmer,et al. New bio-based monomers: tuneable polyester properties using branched diols from biomass. , 2017, Faraday discussions.
[89] Y. Jung,et al. Synthesis of a high-performance citric acid-based polyester elastomer by a hot-pressing technique , 2017 .
[90] Guangyuan Zhou,et al. Biobased copolyesters: Synthesis, sequence distribution, crystal structure, thermal and mechanical properties of poly(butylene sebacate-co-butylene furandicarboxylate) , 2017 .
[91] V. Siracusa,et al. Poly(Neopentyl Glycol Furanoate): A Member of the Furan-Based Polyester Family with Smart Barrier Performances for Sustainable Food Packaging Applications , 2017, Materials.
[92] G. Guebitz,et al. Polyol Structure Influences Enzymatic Hydrolysis of Bio-Based 2,5-Furandicarboxylic Acid (FDCA) Polyesters. , 2017, Biotechnology journal.
[93] Jinggang Wang,et al. Copolyesters Based on 2,5-Furandicarboxylic Acid (FDCA): Effect of 2,2,4,4-Tetramethyl-1,3-Cyclobutanediol Units on Their Properties , 2017, Polymers.
[94] Thomas F. Garrison,et al. Recent advances in vegetable oil-based polymers and their composites , 2017 .
[95] J. Schmid,et al. Production of dodecanedioic acid via biotransformation of low cost plant-oil derivatives using Candida tropicalis , 2017, Journal of Industrial Microbiology & Biotechnology.
[96] E. Pollet,et al. Study on the structure-properties relationship of biodegradable and biobased aliphatic copolyesters based on 1,3-propanediol, 1,4-butanediol, succinic and adipic acids , 2017 .
[97] Jeong Eon Park,et al. Fast Hydrolysis Polyesters with a Rigid Cyclic Diol from Camphor. , 2017, Biomacromolecules.
[98] Matthew W. Kanan,et al. A scalable carboxylation route to furan-2,5-dicarboxylic acid , 2017 .
[99] Cheng Zhou,et al. Miscibility and competition of cocrystallization behavior of poly(hexamethylene dicarboxylate)s aliphatic copolyesters: Effect of chain length of aliphatic diacids , 2017 .
[100] D. Bikiaris,et al. Synthesis and Characterization of Bio-Based Polyesters: Poly(2-methyl-1,3-propylene-2,5-furanoate), Poly(isosorbide-2,5-furanoate), Poly(1,4-cyclohexanedimethylene-2,5-furanoate) , 2017, Materials.
[101] Jing-Ying Lu,et al. High Molecular Weight Polyesters Derived from Biobased 1,5-Pentanediol and a Variety of Aliphatic Diacids: Synthesis, Characterization, and Thermo-Mechanical Properties , 2017 .
[102] Sang Yup Lee,et al. Biotransformation of p-xylene into terephthalic acid by engineered Escherichia coli , 2017, Nature Communications.
[103] Naruki Kurokawa,et al. Strong, Resilient, and Sustainable Aliphatic Polyester Thermoplastic Elastomers. , 2017, Biomacromolecules.
[104] C. Maravelias,et al. Conversion of Furfural to 1,5-Pentanediol: Process Synthesis and Analysis , 2017 .
[105] M. Meier,et al. Poly(1,20-eicosanediyl 2,5-furandicarboxylate), a biodegradable polyester from renewable resources , 2017 .
[106] Lin Sang,et al. Unique isodimorphism and isomorphism behaviors of even-odd poly(hexamethylene dicarboxylate) aliphatic copolyesters , 2017 .
[107] Stephen A. Miller,et al. Copolymerization of lactones and bioaromatics via concurrent ring-opening polymerization/polycondensation , 2017 .
[108] P. Dubois,et al. Hydrolytic degradation of biobased poly(butylene succinate‐co‐furandicarboxylate) and poly(butylene adipate‐co‐furandicarboxylate) copolyesters under mild conditions , 2017 .
[109] M. E. Fray,et al. Enzymatic synthesis of an electrospinnable poly(butylene succinate-co-dilinoleic succinate) thermoplastic elastomer , 2017 .
[110] Zhiqiang Su,et al. Isothermal and nonisothermal crystallization kinetics of novel biobased poly(ethylene succinate-co-ethylene sebacate) copolymers from the amorphous state , 2017, Journal of Thermal Analysis and Calorimetry.
[111] Zhaobin Qiu,et al. Crystallization kinetics, morphology, and hydrolytic degradation of novel biobased poly(butylene succinate-co-decamethylene succinate) copolyesters , 2017 .
[112] A. Sousa,et al. Improving the Thermal Properties of Poly(2,5‐furandicarboxylate)s Using Cyclohexylene Moieties: A Comparative Study , 2017 .
[113] Guangyuan Zhou,et al. Biobased copolyesters: synthesis, crystallization behavior, thermal and mechanical properties of poly(ethylene glycol sebacate-co-ethylene glycol 2,5-furan dicarboxylate) , 2017 .
[114] P. Dubois,et al. The Complex Amorphous Phase in Poly(butylene succinate-ran-butylene azelate) Isodimorphic Copolyesters , 2017 .
[115] E. Pollet,et al. Synthesis and characterization of biobased poly(butylene succinate-ran-butylene adipate). Analysis of the composition-dependent physicochemical properties , 2017 .
[116] A. Vallés-Lluch,et al. Correlating synthesis parameters with physicochemical properties of poly(glycerol sebacate) , 2017 .
[117] Matthew D. Jones,et al. Polymerisation of a terpene-derived lactone: a bio-based alternative to ε-caprolactone , 2017 .
[118] Yan Li,et al. Preparation, morphology and superior performances of biobased thermoplastic elastomer by in situ dynamical vulcanization for 3D-printed materials , 2017 .
[119] T. Farmer,et al. Electrochemical Coupling of Biomass‐Derived Acids: New C8 Platforms for Renewable Polymers and Fuels , 2016, ChemSusChem.
[120] Zhaobin Qiu,et al. Synthesis and properties of novel biodegradable poly(butylene succinate-co-decamethylene succinate) copolyesters from renewable resources , 2016 .
[121] Jinggang Wang,et al. Modification of poly(ethylene 2,5-furandicarboxylate) with 1,4-cyclohexanedimethylene: Influence of composition on mechanical and barrier properties , 2016 .
[122] P. Dubois,et al. DBU-catalyzed biobased poly(ethylene 2,5-furandicarboxylate) polyester with rapid melt crystallization: synthesis, crystallization kinetics and melting behavior , 2016 .
[123] M. U. Wahit,et al. Biodegradable and temperature-responsive thermoset polyesters with renewable monomers , 2016 .
[124] L. Cavallo,et al. The Quest for Converting Biorenewable Bifunctional α-Methylene-γ-butyrolactone into Degradable and Recyclable Polyester: Controlling Vinyl-Addition/Ring-Opening/Cross-Linking Pathways. , 2016, Journal of the American Chemical Society.
[125] D. Bikiaris,et al. Production of bio-based 2,5-furan dicarboxylate polyesters: Recent progress and critical aspects in their synthesis and thermal properties , 2016 .
[126] Liqun Zhang,et al. Synthesis and structure design of new bio-based elastomers via Thiol-ene-Click Reactions. , 2016, Materials science & engineering. C, Materials for biological applications.
[127] O. Park,et al. High molecular weight bio furan-based co-polyesters for food packaging applications: synthesis, characterization and solid-state polymerization , 2016 .
[128] Zhiqiang Su,et al. Crystallization Kinetics, Morphology, and Mechanical Properties of Novel Biodegradable Poly(ethylene succinate-co-ethylene suberate) Copolyesters , 2016 .
[129] George Z. Papageorgiou,et al. Biobased poly(ethylene furanoate-co-ethylene succinate) copolyesters: solid state structure, melting point depression and biodegradability , 2016 .
[130] K. Kwiatkowski,et al. Fully biobased multiblock copolymers of furan-aromatic polyester and dimerized fatty acid: Synthesis and characterization , 2016 .
[131] E. Pollet,et al. Synthesis of potentially biobased copolyesters based on adipic acid and butanediols: Kinetic study between 1,4- and 2,3-butanediol and their influence on crystallization and thermal properties , 2016 .
[132] D. Bikiaris,et al. New poly(pentylene furanoate) and poly(heptylene furanoate) sustainable polyesters from diols with odd methylene groups , 2016 .
[133] Paola Marchese,et al. Advances in the synthesis of bio-based aromatic polyesters: novel copolymers derived from vanillic acid and ε-caprolactone , 2016 .
[134] Liqun Zhang,et al. Renewable and Supertoughened Polylactide-Based Composites: Morphology, Interfacial Compatibilization, and Toughening Mechanism , 2016 .
[135] M. Rafizadeh,et al. Material properties of degradable Poly(butylene succinate-co-fumarate) copolymer networks synthesized by polycondensation of pre-homopolyesters , 2016 .
[136] V. Siracusa,et al. Novel fully biobased poly(butylene 2,5-furanoate/diglycolate) copolymers containing ether linkages: Structure-property relationships , 2016 .
[137] Keng C. Soh,et al. Identification of metabolic engineering targets for the enhancement of 1,4-butanediol production in recombinant E. coli using large-scale kinetic models. , 2016, Metabolic engineering.
[138] N. Guigo,et al. Fast Crystallization and Melting Behavior of a Long-Spaced Aliphatic Furandicarboxylate Biobased Polyester, Poly(dodecylene 2,5-furanoate) , 2016 .
[139] Dongwon Lee,et al. H2O2-triggered bubble generating antioxidant polymeric nanoparticles as ischemia/reperfusion targeted nanotheranostics. , 2016, Biomaterials.
[140] A. M. D. Ilarduya,et al. Poly(alkylene 2,5-furandicarboxylate)s (PEF and PBF) by ring opening polymerization , 2016 .
[141] E. Chen,et al. Towards Truly Sustainable Polymers: A Metal-Free Recyclable Polyester from Biorenewable Non-Strained γ-Butyrolactone. , 2016, Angewandte Chemie.
[142] 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 .
[143] É. Grau,et al. Selective laccase-catalyzed dimerization of phenolic compounds derived from lignin: Towards original symmetrical bio-based (bis) aromatic monomers , 2016 .
[144] Liqun Zhang,et al. Biodegradable unsaturated polyesters containing2,3-butanediol for engineering applications: Synthesis, characterization and performances , 2016 .
[145] Liqun Zhang,et al. Preparation and properties of a novel bio‐based and non‐crystalline engineering elastomer with high low‐temperature and oil resistance , 2016 .
[146] Xiu-li Wang,et al. Renewable Sugar-Based Diols with Different Rigid Structure: Comparable Investigation on Improving Poly(butylene succinate) Performance , 2016 .
[147] Pengju Pan,et al. ABA-Type Thermoplastic Elastomers Composed of Poly(ε-caprolactone-co-δ-valerolactone) Soft Midblock and Polymorphic Poly(lactic acid) Hard End blocks , 2016 .
[148] Xiaojing Li,et al. Synthesis and properties of novel poly(ethylene succinate-co-decamethylene succinate) copolymers , 2015 .
[149] Xiaojing Li,et al. Crystallization kinetics, morphology, and mechanical properties of novel poly(ethylene succinate-co-octamethylene succinate) , 2015 .
[150] Liqun Zhang,et al. Direct copolycondensation of biobased elastomers based on lactic acid with tunable and versatile properties , 2015 .
[151] D. Bikiaris,et al. A facile method to synthesize high‐molecular‐weight biobased polyesters from 2,5‐furandicarboxylic acid and long‐chain diols , 2015 .
[152] Zuolong Yu,et al. Synthesis and degradability of copolyesters of 2, 5-furandicarboxylic acid, lactic acid, and ethylene glycol , 2015 .
[153] D. Bikiaris,et al. Crystallization and Polymorphism of Poly(ethylene furanoate) , 2015 .
[154] S. Mecking,et al. Thermoplastic polyester elastomers based on long-chain crystallizable aliphatic hard segments , 2015 .
[155] M. Long,et al. Advances in catalytic production of bio-based polyester monomer 2,5-furandicarboxylic acid derived from lignocellulosic biomass. , 2015, Carbohydrate polymers.
[156] N. Guigo,et al. Synthesis, properties and thermal behavior of poly(decylene-2,5-furanoate): a biobased polyester from 2,5-furan dicarboxylic acid , 2015 .
[157] N. Karak,et al. Waterborne Sustainable Tough Hyperbranched Aliphatic Polyester Thermosets , 2015 .
[158] A. Gandini,et al. From monomers to polymers from renewable resources: Recent advances , 2015 .
[159] Jorge F. J. Coelho,et al. Biobased polyesters and other polymers from 2,5-furandicarboxylic acid: a tribute to furan excellency , 2015 .
[160] É. Grau,et al. Renewable (semi)aromatic polyesters from symmetrical vanillin-based dimers , 2015 .
[161] Cheng Zhou,et al. Biobased copolyesters from renewable resources: synthesis and crystallization kinetics of poly(propylene sebacate-co-isosorbide sebacate) , 2015 .
[162] N. Guigo,et al. On the bio-based furanic polyesters: Synthesis and thermal behavior study of poly(octylene furanoate) using fast and temperature modulated scanning calorimetry , 2015 .
[163] Haishan Qi,et al. Engineering Scheffersomyces stipitis for fumaric acid production from xylose. , 2015, Bioresource technology.
[164] K. Chrissafis,et al. Furan-based polyesters from renewable resources: Crystallization and thermal degradation behavior of poly(hexamethylene 2,5-furan-dicarboxylate) , 2015 .
[165] A. M. D. Ilarduya,et al. Bio-based PBS copolyesters derived from a bicyclic D-glucitol , 2015 .
[166] Cheng Zhou,et al. Biobased copolyesters from renewable resources: synthesis and crystallization behavior of poly(decamethylene sebacate-co-isosorbide sebacate) , 2015 .
[167] E. M. Hill,et al. Poly(lactide)-block-poly(ε-caprolactone-co-ε-decalactone)-block-poly(lactide) copolymer elastomers , 2015 .
[168] P. Xue,et al. Synthesis, thermal properties, and crystallization kinetics of novel biodegradable poly(ethylene succinate-co-diethylene glycol succinate) copolyesters , 2015 .
[169] S. Hbaieb,et al. New Copolyesters Containing Aliphatic and Bio-Based Furanic Units by Bulk Copolycondensation , 2015 .
[170] D. Bikiaris,et al. Synthesis of the bio-based polyester poly(propylene 2,5-furan dicarboxylate). Comparison of thermal behavior and solid state structure with its terephthalate and naphthalate homologues , 2015 .
[171] William J. Koros,et al. Carbon Dioxide Sorption and Transport in Amorphous Poly(ethylene furanoate) , 2015 .
[172] M. Dam,et al. Isothermal Crystallization Kinetics of Poly (Ethylene 2,5‐Furandicarboxylate) , 2015 .
[173] Mingqing Chen,et al. Synthesis of Bio-Based Poly(lactic acid-co-10-hydroxy decanoate) Copolymers with High Thermal Stability and Ductility , 2015 .
[174] N. Ning,et al. Novel biobased thermoplastic elastomer consisting of synthetic polyester elastomer and polylactide by in situ dynamical crosslinking method , 2015 .
[175] K. Chrissafis,et al. Thermal degradation kinetics and decomposition mechanism of polyesters based on 2,5-furandicarboxylic acid and low molecular weight aliphatic diols , 2015 .
[176] J. Pascault,et al. Bio-based alternatives in the synthesis of aliphatic–aromatic polyesters dedicated to biodegradable film applications , 2015 .
[177] Shaohua Wu,et al. A facile and versatile strategy to efficiently synthesize sulfonated poly(butylene succinate), self-assembly behavior and biocompatibility , 2015 .
[178] K. Kasuya,et al. Synthesis and Verification of Biobased Terephthalic Acid from Furfural , 2015, Scientific Reports.
[179] H. Fukuoka,et al. Synthesis of biodegradable thermoplastic elastomers from ε‐caprolactone and lactide , 2015 .
[180] Jian-biao Ma,et al. Novel vanillic acid-based poly(ether–ester)s: from synthesis to properties , 2015 .
[181] P. Dubois,et al. How Composition Determines the Properties of Isodimorphic Poly(butylene succinate-ran-butylene azelate) Random Biobased Copolymers: From Single to Double Crystalline Random Copolymers , 2015 .
[182] W. Koros,et al. Water sorption in poly(ethylene furanoate) compared to poly(ethylene terephthalate). Part 2: Kinetic sorption , 2014 .
[183] A. M. D. Ilarduya,et al. Modification of properties of poly(butylene succinate) by copolymerization with tartaric acid-based monomers , 2014 .
[184] Wei Zhang,et al. Synthesis and characterization of bio-based poly(butylene furandicarboxylate)-b-poly(tetramethylene glycol) copolymers , 2014 .
[185] Ed de Jong,et al. Non-isothermal Crystallization Kinetics of Biobased Poly(ethylene 2,5-furandicarboxylate) Synthesized via the Direct Esterification Process , 2014 .
[186] J. Coelho,et al. A New Generation of Furanic Copolyesters with Enhanced Degradability: Poly(ethylene 2,5‐furandicarboxylate)‐co‐poly(lactic acid) Copolyesters , 2014 .
[187] A. M. D. Ilarduya,et al. Biodegradable Copolyesters of Poly(hexamethylene terephthalate) Containing Bicyclic 2,4:3,5‐Di‐O‐methylene‐d‐Glucarate Units , 2014 .
[188] Xiaoran Hu,et al. Synthesis and characterization of biobased isosorbide-containing copolyesters as shape memory polymers for biomedical applications. , 2014, Journal of materials chemistry. B.
[189] G. Madras,et al. Combinatorial approach to develop tailored biodegradable poly(xylitol dicarboxylate) polyesters. , 2014, Biomacromolecules.
[190] Patrick B. Smith,et al. Synthesis and characterization of glycerol-adipic acid hyperbranched polyesters , 2014 .
[191] É. Grau,et al. Selective isomerization–carbonylation of a terpene trisubstituted double bond , 2014 .
[192] J. R. Johnson,et al. Oxygen sorption and transport in amorphous poly(ethylene furanoate) , 2014 .
[193] Jian Yang,et al. Engineering biodegradable polyester elastomers with antioxidant properties to attenuate oxidative stress in tissues. , 2014, Biomaterials.
[194] 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 .
[195] X. Kong,et al. Synthesis and characterization of high-molecular weight aliphatic polyesters from monomers derived from renewable resources , 2014 .
[196] Liqun Zhang,et al. Synthesis of bio-based copolyester and its reinforcement with zinc diacrylate for shape memory application , 2014 .
[197] 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 .
[198] E. Chen,et al. Coordination Ring-Opening Copolymerization of Naturally Renewable α-Methylene-γ-butyrolactone into Unsaturated Polyesters , 2014 .
[199] Mark E. Davis,et al. Synthesis of terephthalic acid via Diels-Alder reactions with ethylene and oxidized variants of 5-hydroxymethylfurfural , 2014, Proceedings of the National Academy of Sciences.
[200] A. M. D. Ilarduya,et al. Bio-based poly(ethylene terephthalate) copolyesters made from cyclic monomers derived from tartaric acid , 2014 .
[201] J. Halpern,et al. A biodegradable thermoset polymer made by esterification of citric acid and glycerol. , 2014, Journal of biomedical materials research. Part A.
[202] I. ColliasDimitris,et al. Biobased Terephthalic Acid Technologies: A Literature Review , 2014 .
[203] D. Bikiaris,et al. Synthesis of poly(ethylene furandicarboxylate) polyester using monomers derived from renewable resources: thermal behavior comparison with PET and PEN. , 2014, Physical chemistry chemical physics : PCCP.
[204] Jorge F. J. Coelho,et al. The quest for sustainable polyesters – insights into the future , 2014 .
[205] A. M. D. Ilarduya,et al. Bio-based PBT copolyesters derived from D-glucose: influence of composition on properties , 2014 .
[206] A. M. D. Ilarduya,et al. Carbohydrate-based PBT copolyesters from a cyclic diol derived from naturally occurring tartaric acid: a comparative study regarding melt polycondensation and solid-state modification , 2014 .
[207] R. Mülhaupt,et al. Long-chain aliphatic polyesters from plant oils for injection molding, film extrusion and electrospinning , 2014 .
[208] Hui Gao,et al. Renewable polyesters derived from 10-undecenoic acid and vanillic acid with versatile properties , 2014 .
[209] William J. Koros,et al. Chain Mobility, Thermal, and Mechanical Properties of Poly(ethylene furanoate) Compared to Poly(ethylene terephthalate) , 2014 .
[210] Xiao-hui Liu,et al. Catalytic production of isosorbide from cellulose over mesoporous niobium phosphate-based heterogeneous catalysts via a sequential process , 2014 .
[211] J. Puiggalí,et al. Study on the crystallization of poly(butylene azelate-co-butylene succinate) copolymers , 2014 .
[212] T. Hikima,et al. Biobased Copolymers Composed of l‐Lactic Acid and Side‐Chain‐Substituted Lactic Acids: Synthesis, Properties, and Solid‐State Structure , 2013 .
[213] P. Wei,et al. Chemosynthesis and characterization of fully biomass‐based copolymers of ethylene glycol, 2,5‐furandicarboxylic acid, and succinic acid , 2013 .
[214] M. Tian,et al. A high-performance dielectric elastomer consisting of bio-based polyester elastomer and titanium dioxide powder , 2013 .
[215] H. J. Heeres,et al. Ruthenium/1,1′‐Bis(diphenylphosphino)ferrocene‐Catalysed Oppenauer Oxidation of Alcohols and Lactonisation of α,ω‐Diols using Methyl Isobutyl Ketone as Oxidant , 2013 .
[216] Lidia Jasinska-Walc,et al. Linear and branched polyester resins based on dimethyl-2,5-furandicarboxylate for coating applications , 2013 .
[217] D. S. Es,et al. High molecular weight poly(ethylene-2,5-furanoate); critical aspects in synthesis and mechanical property determination , 2013 .
[218] F. Zabihi,et al. Hyperbranched poly(citric acid) and its application as anticancer drug delivery system , 2013 .
[219] Wei Zhang,et al. Synthesis, physical properties and enzymatic degradation of bio-based poly (butylene adipate-co-butylene furandicarboxylate) copolyesters , 2013 .
[220] Haimu Ye,et al. Role of Poly(butylene fumarate) on Crystallization Behavior of Poly(butylene succinate) , 2013 .
[221] R. Gross,et al. Aliphatic/aromatic copolyesters containing biobased ω-hydroxyfatty acids: Synthesis and structure–property relationships , 2013 .
[222] A. M. D. Ilarduya,et al. Solid-state modification of PBT with cyclic acetalized galactitol and D-mannitol: Influence of composition and chemical microstructure on thermal properties , 2013 .
[223] A. M. D. Ilarduya,et al. D-Glucose-derived PET copolyesters with enhanced Tg , 2013 .
[224] D. Merino,et al. Solid-State Modification of Poly(butylene terephthalate) with a Bio-Based Fatty Acid Dimer Diol Furnishing Copolyesters with Unique Morphologies , 2013 .
[225] H. Cramail,et al. Fully bio-based poly(L-lactide)-b-poly(ricinoleic acid)-b-poly(L-lactide) triblock copolyesters: investigation of solid-state morphology and thermo-mechanical properties , 2013 .
[226] P. Kang,et al. Inflammation-responsive antioxidant nanoparticles based on a polymeric prodrug of vanillin. , 2013, Biomacromolecules.
[227] Liqun Zhang,et al. Employing a novel bioelastomer to toughen polylactide , 2013 .
[228] N. Jarroux,et al. Novel aliphatic polyesters from an oleic acid based monomer. Synthesis, epoxidation, cross-linking and biodegradation , 2013 .
[229] S. Weidner,et al. Copolyesters of Lactide, Isosorbide, and Terephthalic Acid-Biobased, Biodegradable, High-Tg Engineering Plastics , 2013 .
[230] A. M. D. Ilarduya,et al. Bio-based poly(hexamethylene terephthalate) copolyesters containing cyclic acetalized tartrate units , 2013 .
[231] Zhaobin Qiu,et al. Crystallization Kinetics and Morphology of Novel Biodegradable Poly(hexamethylene succinate-co-3 mol % ethylene succinate) with Low and High Molecular Weights , 2013 .
[232] P. Dubois,et al. Biobased polyesters with composition-dependent thermomechanical properties: synthesis and characterization of poly(butylene succinate-co-butylene azelate). , 2013, Biomacromolecules.
[233] S. Muñoz-Guerra,et al. High T(g) bio-based aliphatic polyesters from bicyclic D-mannitol. , 2013, Biomacromolecules.
[234] Lidia Jasinska-Walc,et al. Synthesis and characterization of novel renewable polyesters based on 2,5‐furandicarboxylic acid and 2,3‐butanediol , 2013 .
[235] Ed de Jong,et al. Hydroxymethylfurfural, a versatile platform chemical made from renewable resources. , 2013, Chemical reviews.
[236] Gaixia Du,et al. Bis(imino)diphenylamido rare-earth metal dialkyl complexes: synthesis, structure, and catalytic activity in living ring-opening ε-caprolactone polymerization and copolymerization with γ-butyrolactone. , 2013, Dalton transactions.
[237] M. Gazzano,et al. Poly(butylene 2,5-furan dicarboxylate), a Biobased Alternative to PBT: Synthesis, Physical Properties, and Crystal Structure , 2013 .
[238] Zhaobin Qiu,et al. Synthesis, Crystallization Kinetics, and Morphology of Novel Biodegradable Poly(butylene succinate-co-hexamethylene succinate) Copolyesters , 2012 .
[239] M. Meier,et al. Plant Oil‐Based Long‐Chain C26 Monomers and Their Polymers , 2012 .
[240] S. Weidner,et al. Structural analysis of biodegradable low-molecular mass copolyesters based on glycolic acid, adipic acid and 1,4 butanediol and correlation with their hydrolytic degradation , 2012 .
[241] Yanliang Yang,et al. Catalytic oxidative decarboxylation of malic acid into dimethyl malonate in methanol with dioxygen. , 2012, ChemSusChem.
[242] A. M. D. Ilarduya,et al. Bio-based aromatic polyesters from a novel bicyclic diol derived from D-mannitol , 2012 .
[243] S. Picataggio,et al. Bio-based adipic acid from renewable oils , 2012 .
[244] Zhaobin Qiu,et al. A Comparative Study of Crystallization, Melting Behavior, and Morphology of Biodegradable Poly(ethylene adipate) and Poly(ethylene adipate-co-5 mol % ethylene succinate) , 2012 .
[245] Xiu-li Wang,et al. Synthesis and Properties of Biodegradable Poly(butylene succinate-co-diethylene glycol succinate) Copolymers , 2012 .
[246] B. Tisserat,et al. Glycerol citrate polyesters produced through heating without catalysis , 2012 .
[247] Michael Sauer,et al. 1,3-Propanediol production from glycerol with Lactobacillus diolivorans. , 2012, Bioresource technology.
[248] S. Muñoz-Guerra,et al. Biodegradation and hydrolytic degradation of poly(butylene terephthalate) copolyesters containing cyclic sugar units , 2012 .
[249] Jiping Ma,et al. Synthesis and crystallinity of poly(butylene 2,5-furandicarboxylate) , 2012 .
[250] P. Dubois,et al. High molecular weight poly(butylene succinate-co-butylene furandicarboxylate) copolyesters: from catalyzed polycondensation reaction to thermomechanical properties. , 2012, Biomacromolecules.
[251] A. M. D. Ilarduya,et al. Biodegradable aromatic copolyesters made from bicyclic acetalized galactaric acid , 2012 .
[252] M. Reuter,et al. A Fast Degrading Odd–Odd Aliphatic Polyester-5,7 Made by Condensation Polymerization for Biomedical Applications , 2012, Journal of biomaterials science. Polymer edition.
[253] H. Kim,et al. Synthesis of elastic biodegradable polyesters of ethylene glycol and butylene glycol from sebacic acid. , 2012, Acta biomaterialia.
[254] A. M. D. Ilarduya,et al. Bio-based poly(butylene terephthalate) copolyesters containing bicyclic diacetalized galactitol and galactaric acid: Influence of composition on properties , 2012 .
[255] Xiaohua Ma,et al. Direct Conversion of Cellulose to Glycolic Acid with a Phosphomolybdic Acid Catalyst in a Water Medium , 2012 .
[256] A. M. D. Ilarduya,et al. Bio-based aromatic copolyesters made from 1,6-hexanediol and bicyclic diacetalized D-glucitol , 2012 .
[257] Haimu Ye,et al. Isomorphism in Poly(butylene succinate-co-butylene fumarate) and Its Application as Polymeric Nucleating Agent for Poly(butylene succinate) , 2012 .
[258] A. Rozanski,et al. Semicrystalline Polyesters Based on a Novel Renewable Building Block , 2012 .
[259] M. Tian,et al. New polyester dielectric elastomer with large actuated strain at low electric field , 2012 .
[260] Liqun Zhang,et al. Synthesis, preparation, in vitro degradation, and application of novel degradable bioelastomers—A review , 2012 .
[261] Zhaobin Qiu,et al. Synthesis, crystallization kinetics and morphology of novel poly(ethylene succinate-co-ethylene adipate) copolymers , 2012 .
[262] Ming Chen,et al. Mechanisms and kinetics of thermal degradation of poly(butylene succinate‐co‐propylene succinate)s , 2012 .
[263] Guangyuan Zhou,et al. A series of furan‐aromatic polyesters synthesized via direct esterification method based on renewable resources , 2012 .
[264] J. Jacob,et al. Synthesis and characterization of copolyesters based on tartaric acid derivatives , 2012, Polymer Bulletin.
[265] Liqun Zhang,et al. Tough Bio‐Based Elastomer Nanocomposites with High Performance for Engineering Applications , 2012 .
[266] A. M. D. Ilarduya,et al. Poly(ethylene terephthalate) terpolyesters containing 1,4-cyclohexanedimethanol and isosorbide , 2012 .
[267] L. Sipos,et al. Accelerating research into bio-based FDCA-polyesters by using small scale parallel film reactors. , 2012, Combinatorial chemistry & high throughput screening.
[268] Jiping Ma,et al. The copolymerization reactivity of diols with 2,5-furandicarboxylic acid for furan-based copolyester materials , 2012 .
[269] M. Hillmyer,et al. Polylactide–Poly(6-methyl-ε-caprolactone)–Polylactide Thermoplastic Elastomers , 2011 .
[270] Y. Inoue,et al. Critical role of the conformation of comonomer units in isomorphic crystallization of poly(hexamethylene adipate-co-butylene adipate) forming Poly(hexamethylene adipate) type crystal , 2011 .
[271] A. Gandini,et al. Synthesis and characterization of poly(2,5-furan dicarboxylate)s based on a variety of diols , 2011 .
[272] Christian Bährle,et al. Aliphatic long-chain C20 polyesters from olefin metathesis. , 2011, Macromolecular rapid communications.
[273] Laurent Mialon,et al. Polyalkylenehydroxybenzoates (PAHBs): biorenewable aromatic/aliphatic polyesters from lignin. , 2011, Macromolecular rapid communications.
[274] M. Colonna,et al. Synthesis and radiocarbon evidence of terephthalate polyesters completely prepared from renewable resources , 2011 .
[275] M. Meier,et al. Terpene-Based Renewable Monomers and Polymers via Thiol–Ene Additions , 2011 .
[276] Suwen Ye,et al. Synthesis of novel biodegradable poly(butylene succinate) copolyesters composing of isosorbide and poly(ethylene glycol) , 2011 .
[277] R. Gross,et al. Polymers from fatty acids: poly(ω-hydroxyl tetradecanoic acid) synthesis and physico-mechanical studies. , 2011, Biomacromolecules.
[278] Megan L. Robertson,et al. Tough blends of polylactide and castor oil. , 2011, ACS applied materials & interfaces.
[279] I. Melián-Cabrera,et al. Caprolactam from renewable resources: catalytic conversion of 5-hydroxymethylfurfural into caprolactone. , 2011, Angewandte Chemie.
[280] S. Muñoz-Guerra,et al. Carbohydrate-based polyesters made from bicyclic acetalized galactaric acid. , 2011, Biomacromolecules.
[281] A. M. D. Ilarduya,et al. Polyterephthalates made from Ethylene glycol, 1,4‐cyclohexanedimethanol, and isosorbide , 2011 .
[282] I. Heckler,et al. Long-Chain Linear C19 and C23 Monomers and Polycondensates from Unsaturated Fatty Acid Esters , 2011 .
[283] Yu-Zhong Wang,et al. synthesis, crystallization and hydrolysis of aromatic-aliphatic copolyester: poly(trimethylene terephthalate)-co-poly(l-lactic acid) , 2011 .
[284] Zhaobin Qiu,et al. Crystallization kinetics and morphology of biodegradable poly(butylene succinate-co-ethylene succinate) copolyesters: effects of comonomer composition and crystallization temperature , 2011 .
[285] Liqun Zhang,et al. Biobased poly(propylene sebacate) as shape memory polymer with tunable switching temperature for potential biomedical applications. , 2011, Biomacromolecules.
[286] Jiping Ma,et al. Oxidation of 5-hydroxymethylfurfural to maleic anhydride with molecular oxygen , 2011 .
[287] M. Hillmyer,et al. Functional biorenewable polyesters from carvone-derived lactones , 2011 .
[288] Jane E. Wissinger,et al. Pressure-Sensitive Adhesives from Renewable Triblock Copolymers , 2011 .
[289] Jiying Sun,et al. Selective hydrogenolysis of biomass-derived xylitol to ethylene glycol and propylene glycol on supported Ru catalysts , 2011 .
[290] D. Bikiaris,et al. Synthesis, Crystallization, and Enzymatic Degradation of the Biodegradable Polyester Poly(ethylene azelate) , 2010 .
[291] J. Jacob,et al. Synthesis and characterization of polyesters based on tartaric acid derivatives , 2010 .
[292] Huarong Nie,et al. Novel poly(butylene succinate-co-lactic acid) copolyesters: Synthesis, crystallization, and enzymatic degradation , 2010 .
[293] Y. Inoue,et al. Isomorphic Crystallization of Poly(hexamethylene adipate-co-butylene adipate): Regulating Crystal Modification of Polymorphic Polyester from Internal Crystalline Lattice , 2010 .
[294] Ming Chen,et al. Nonisothermal crystallization kinetics of biodegradable poly(butylene succinate‐co‐propylene succinate)s , 2010 .
[295] K. Chrissafis,et al. Thermal degradation kinetics and decomposition mechanism of two new aliphatic biodegradable polyesters poly(propylene glutarate) and poly(propylene suberate) , 2010 .
[296] S. Mecking,et al. Linear semicrystalline polyesters from fatty acids by complete feedstock molecule utilization. , 2010, Angewandte Chemie.
[297] J. Milić,et al. A Chemical Route to High Molecular Weight Vegetable Oil-Based Polyhydroxyalkanoate , 2010 .
[298] R. Gross,et al. Two-step biocatalytic route to biobased functional polyesters from omega-carboxy fatty acids and diols. , 2010, Biomacromolecules.
[299] U. Fehrenbacher,et al. Synthese und Charakterisierung von Polyestern und Polyamiden auf der Basis von Furan‐2,5‐dicarbonsäure , 2009 .
[300] E. Park,et al. Biotechnological production of itaconic acid and its biosynthesis in Aspergillus terreus , 2009, Applied Microbiology and Biotechnology.
[301] R. Duchateau,et al. Incorporation of isosorbide into poly(butylene terephthalate) via solid-state polymerization. , 2008, Biomacromolecules.
[302] Dimitrios J. Giliopoulos,et al. Correlation between chemical and solid-state structures and enzymatic hydrolysis in novel biodegradable polyesters. The case of poly(propylene alkanedicarboxylate)s. , 2008, Macromolecular bioscience.
[303] Jun Xu,et al. Synthesis and characterization of biodegradable poly(butylene succinate‐co‐propylene succinate)s , 2008 .
[304] J. Puiggalí,et al. Single crystal morphology and structural data of a series of polyesters derived from 1,8-octanediol , 2008 .
[305] C. Alemán,et al. Why delta-valerolactone polymerizes and gamma-butyrolactone does not. , 2008, The Journal of organic chemistry.
[306] Nezihe Azcan and,et al. Obtaining 2-Octanol, 2-Octanone, and Sebacic Acid from Castor Oil by Microwave-Induced Alkali Fusion , 2008 .
[307] M. Hillmyer,et al. Renewable-resource thermoplastic elastomers based on polylactide and polymenthide. , 2007, Biomacromolecules.
[308] M. Gazzano,et al. Aliphatic poly(propylene dicarboxylate)s: Effect of chain length on thermal properties and crystallization kinetics , 2007 .
[309] H. Kricheldorf,et al. Influence of Isosorbide on Glass‐Transition Temperature and Crystallinity of Poly(butylene terephthalate) , 2007 .
[310] K. Chrissafis,et al. Synthesis, characterization and thermal degradation mechanism of three poly(alkylene adipate)s: Comparative study , 2007 .
[311] P. N. Sarma,et al. Xylitol production from corn fiber and sugarcane bagasse hydrolysates by Candida tropicalis. , 2006, Bioresource technology.
[312] Johnathan E. Holladay,et al. Top Value Added Chemicals From Biomass. Volume 1 - Results of Screening for Potential Candidates From Sugars and Synthesis Gas , 2004 .
[313] R. Langer,et al. A tough biodegradable elastomer , 2002, Nature Biotechnology.
[314] C. Ayyanna,et al. Optimizing medium constituents and fermentation conditions for citric acid production from palmyra jaggery using response surface method , 2001 .
[315] K. Wada,et al. A Novel Production of γ-Butyrolactone Catalyzed by Ruthenium Complexes , 2000 .
[316] M. Ballauff,et al. Synthesis and thermal analysis of copolyesters deriving from 1,4:3,6-dianhydrosorbitol, ethylene glycol, and terephthalic acid , 1996 .
[317] I. Maddox,et al. Microbial production of 2,3-butanediol from whey permeate , 1984, Biotechnology Letters.
[318] O. Kordsachia,et al. Darstellung und Eigenschaften von aus Vanillin und Syringaaldehyd erhältlichen Polyestern , 1981, Holz als Roh- und Werkstoff.
[319] M. J. Diamond,et al. Alkaline cleavage of hydroxy unsaturated fatty acids and derivatives. II 10-hydroxydecanoic acid from ricinoleates and 1,10-decanediol from ricmoleyl alcohol , 1967 .
[320] F. Korte,et al. Hochdruckreaktionen. II. Die polymerisation von γ‐Butyrolacton und δ‐Valerolactam bei hohen drücken , 1966 .
[321] Xiaojing Li,et al. Synthesis, crystallization behavior and mechanical properties of novel biobased Poly(octamethylene succinate) , 2020, Polymer Degradation and Stability.
[322] Shaoying Liu,et al. Synthesis and properties of poly(isosorbide 2,5-furandicarboxylate-co-ε-caprolactone) copolyesters , 2020 .
[323] L. Nilsson,et al. Designing Biobased Recyclable Polymers for Plastics. , 2019, Trends in biotechnology.
[324] Jing-Ying Lu,et al. Biobased flexible aromatic polyester poly(1,5-pentylene terephthalate) (PPeT): Revisiting melt crystallization behaviors and thermo-mechanical properties , 2019, European Polymer Journal.
[325] J. Ji,et al. Poly(butylene 2,5-furandicarboxylate-ε-caprolactone): A new bio-based elastomer with high strength and biodegradability , 2017 .
[326] Peng Shuangbao,et al. 温和な条件下でのバイオベースポリ(ブチレンスクシナート-co-フラノジカルボキシラート)とポリ(ブチレンアジパート-co-フラノジカルボキシラート)共重合ポリエステルの加水分解【Powered by NICT】 , 2017 .
[327] Margaret J. Sobkowicz,et al. Bio-based poly(butylene succinate-co-hexamethylene succinate) copolyesters with tunable thermal and mechanical properties , 2017 .
[328] D. Haddleton,et al. Thermal study of polyester networks based on renewable monomers citric acid and gluconolactone , 2017 .
[329] K. Zia,et al. Recent developments and future prospects on bio-based polyesters derived from renewable resources: A review. , 2016, International journal of biological macromolecules.
[330] E. Chen,et al. Completely recyclable biopolymers with linear and cyclic topologies via ring-opening polymerization of γ-butyrolactone. , 2016, Nature chemistry.
[331] Daan S. van Es,et al. Semi-aromatic polyesters based on a carbohydrate-derived rigid diol for engineering plastics. , 2015, ChemSusChem.
[332] Jaya Tuteja,et al. Direct synthesis of 1,6-hexanediol from HMF over a heterogeneous Pd/ZrP catalyst using formic acid as hydrogen source. , 2014, ChemSusChem.
[333] M. Belgacem,et al. Synthesis and characterization of bio-based furanic polyesters , 2013, Journal of Polymer Research.
[334] S. Muñoz-Guerra,et al. Sugar-based aromatic copolyesters: a comparative study regarding isosorbide and diacetalized alditols as sustainable comonomers , 2013 .
[335] M. Meier,et al. Renewable co-polymers derived from vanillin and fatty acid derivatives , 2013 .
[336] Kathleen A. Curran,et al. Metabolic engineering of muconic acid production in Saccharomyces cerevisiae. , 2013, Metabolic engineering.
[337] A. M. D. Ilarduya,et al. PET copolyesters made from a D-mannitol-derived bicyclic diol , 2013 .
[338] G. Barbiroli,et al. Preparation of new biobased polyesters containing glycerol and their photodurability for outdoor , 2012 .
[339] Andreas Martin,et al. Synthesis of azelaic acid from vegetable oil-based feedstocks , 2011 .
[340] Cong-jie Gao,et al. Tartaric acid production by ion exchange resin-filling electrometathesis and its process economics , 2011 .
[341] A. Gandini,et al. The furan counterpart of poly(ethylene terephthalate): An alternative material based on renewable resources , 2009 .
[342] J. Nowaczyk,et al. Hydrolytic degradation of copolymers based on l-lactic acid and bis-2-hydroxyethyl terephthalate , 2007 .
[343] D. Bikiaris,et al. Synthesis and comparative biodegradability studies of three poly(alkylene succinate)s , 2006 .
[344] D. Gokhale,et al. Strain improvement of Lactobacillus delbrueckii NCIM 2365 for lactic acid production , 2006 .
[345] J. Djonlagic,et al. Synthesis and characterization of biodegradable poly(butylene succinate-co-butylene adipate)s , 2001 .
[346] T. L. Ooi,et al. CRUDE GLYCERINE RECOVERY FROM GLYCEROL RESIDUE WASTE FROM A PALM KERNEL OIL METHYL ESTER PLANT , 2001 .
[347] M. Ballauff,et al. Synthesis and properties of high‐molecular‐weight polyesters based on 1,4:3,6‐dianhydrohexitols and terephthalic acid , 1993 .