Synthesis of Sulfur/Selenium-containing Polyester with Recyclability and Controllable Hydrophilicity and Glass Transition Temperature
暂无分享,去创建一个
[1] Maohui Luo,et al. Fully Chemical Recyclable Poly(γ-butyrolactone)-based Copolymers with Tunable Structures and Properties , 2022, Chinese Journal of Polymer Science.
[2] E. Chen,et al. Closing the "One Monomer-Two Polymers-One Monomer" Loop via Orthogonal (De)polymerization of a Lactone/Olefin Hybrid. , 2022, Journal of the American Chemical Society.
[3] D. Xing,et al. Synthesis and Antibacterial Activity of Selenium-functionalized Poly(ε-caprolactone) , 2021, Chinese Journal of Polymer Science.
[4] L. Broadbelt,et al. Design principles for intrinsically circular polymers with tunable properties , 2021, Chem.
[5] L. Cavallo,et al. Hybrid monomer design for unifying conflicting polymerizability, recyclability, and performance properties , 2021, Chem.
[6] N. Zhu,et al. Advances, Challenges, and Opportunities of Poly(γ-butyrolactone)-Based Recyclable Polymers. , 2021, ACS macro letters.
[7] S. Mecking,et al. Closed-loop recycling of polyethylene-like materials , 2021, Nature.
[8] P. Guégan,et al. Functional Poly(ester-alt-sulfide)s Synthesized by Organo-Catalyzed Anionic Ring-Opening Alternating Copolymerization of Oxiranes and γ-Thiobutyrolactones , 2020 .
[9] Robin J. White,et al. Beyond Mechanical Recycling: Giving New Life to Plastic Waste , 2020, Angewandte Chemie.
[10] D. Xing,et al. The functionalization of poly(ε-caprolactone) as a versatile platform using ε-(α-phenylseleno) caprolactone as a monomer , 2019, Polymer Chemistry.
[11] Stephen A. Miller,et al. Synthesis, characterization, and water-degradation of biorenewable polyesters derived from natural camphoric acid , 2019, Green Chemistry.
[12] M. Xiao,et al. Nonstrained γ-Butyrolactone to High-Molecular-Weight Poly(γ-butyrolactone): Facile Bulk Polymerization Using Economical Ureas/Alkoxides , 2018, Macromolecules.
[13] Xing-hong Zhang,et al. Dual Organocatalysts for Highly Active and Selective Synthesis of Linear Poly(γ-butyrolactone)s with High Molecular Weights , 2018, Macromolecules.
[14] Zhibo Li,et al. Phosphazene Bases as Organocatalysts for Ring-Opening Polymerization of Cyclic Esters. , 2018, Macromolecular rapid communications.
[15] W. Frey,et al. Polarized olefins as enabling (co)catalysts for the polymerization of γ-butyrolactone , 2018 .
[16] Jing Guo,et al. Hydrophilic Modified Polyester Based on Waste PET Bottles , 2018 .
[17] J. Kenny,et al. Thermally-activated shape memory effect on biodegradable nanocomposites based on PLA/PCL blend reinforced with hydroxyapatite , 2018 .
[18] E. Chen,et al. A synthetic polymer system with repeatable chemical recyclability , 2018, Science.
[19] M. Hillmyer,et al. Sustainable Polyester Elastomers from Lactones: Synthesis, Properties, and Enzymatic Hydrolyzability. , 2018, Journal of the American Chemical Society.
[20] Zhibo Li,et al. Selective Ring-Opening Polymerization of Non-Strained γ-Butyrolactone Catalyzed by A Cyclic Trimeric Phosphazene Base. , 2017, Angewandte Chemie.
[21] Christopher D. McCune,et al. Synthesis and Deployment of an Elusive Fluorovinyl Cation Equivalent: Access to Quaternary α-(1'-Fluoro)vinyl Amino Acids as Potential PLP Enzyme Inactivators. , 2017, Journal of the American Chemical Society.
[22] D. Gigmes,et al. Radical Ring-Opening Polymerization: Scope, Limitations, and Application to (Bio)Degradable Materials. , 2017, Chemical reviews.
[23] E. Chen,et al. Towards Truly Sustainable Polymers: A Metal-Free Recyclable Polyester from Biorenewable Non-Strained γ-Butyrolactone. , 2016, Angewandte Chemie.
[24] T. Emrick,et al. Deoxybenzoin-containing polysulfones and polysulfoxides: Synthesis and thermal properties , 2016 .
[25] R. O’Reilly,et al. Functional Degradable Polymers by Radical Ring-Opening Copolymerization of MDO and Vinyl Bromobutanoate: Synthesis, Degradability and Post-Polymerization Modification , 2015, Biomacromolecules.
[26] H. Sardón,et al. Experimental and computational studies of ring‐opening polymerization of ethylene brassylate macrolactone and copolymerization with ε‐caprolactone and TBD‐guanidine organic catalyst , 2015 .
[27] M. Hillmyer,et al. Aliphatic polyester block polymers: renewable, degradable, and sustainable. , 2014, Accounts of chemical research.
[28] F. Du,et al. Chemical Synthesis of Functional Poly(4-hydroxybutyrate) with Controlled Degradation via Intramolecular Cyclization , 2013 .
[29] J. Carpentier,et al. Poly(hydroxyalkanoate) Block or Random Copolymers of β-Butyrolactone and Benzyl β-Malolactone: A Matter of Catalytic Tuning , 2013 .
[30] J. Carpentier,et al. Organocatalyzed controlled ROP of β-lactones towards poly(hydroxyalkanoate)s: from β-butyrolactone to benzyl β-malolactone polymers , 2013 .
[31] Joseph J. Bozell,et al. Technology development for the production of biobased products from biorefinery carbohydrates—the US Department of Energy’s “Top 10” revisited , 2010 .
[32] C. Alemán,et al. Why delta-valerolactone polymerizes and gamma-butyrolactone does not. , 2008, The Journal of organic chemistry.
[33] Sandro Donnini Mancini,et al. Determinação da variação da viscosidade intrínseca do poli (tereftalato de etileno) de embalagens , 2004 .
[34] E. Chen,et al. Completely recyclable biopolymers with linear and cyclic topologies via ring-opening polymerization of γ-butyrolactone. , 2016, Nature chemistry.
[35] I. C. Mcneill,et al. Degradation studies of some polyesters and polycarbonates—2. Polylactide: Degradation under isothermal conditions, thermal degradation mechanism and photolysis of the polymer , 1985 .
[36] K. Nicolaou. Organoselenium-induced cyclizations in organic synthesis , 1981 .