Catalyst-free reprocessable, degradable and intrinsically flame-retardant epoxy vitrimer for carbon fiber reinforced composites
暂无分享,去创建一个
[1] Hongqiang Yan,et al. Structure and properties of a flame retardant ternary vitrimer regulated by cyclic and long-chain dicarboxylic acids , 2023, Polymer Degradation and Stability.
[2] Long Jiang,et al. Characterization of hydrothermal aging induced voids in carbon fiber reinforced epoxy resin composites using micro-computed tomography , 2022, Polymer Degradation and Stability.
[3] Zhanjun Wu,et al. A transesterification-based epoxy vitrimer synthesis enabled high crack self-healing efficiency to fibrous composites , 2022, Composites Part A: Applied Science and Manufacturing.
[4] Li Chen,et al. Adaptable Phosphate Networks towards Robust, Reprocessable, Weldable, and Alertable-Yet-Extinguishable Epoxy Vitrimer , 2022, Research.
[5] Li Chen,et al. In situ phase separation of novel phosphorus-containing polyester in epoxy resins towards simultaneously improved thermal conductivity and fire safety , 2022, Polymer Degradation and Stability.
[6] N. Tanguy,et al. Recyclable, Self-Strengthening Starch-Based Epoxy Vitrimer Facilitated by Exchangeable Disulfide Bonds from Garlic , 2022, SSRN Electronic Journal.
[7] Xin Wang,et al. Improvement of the flame retardant and thermomechanical properties of epoxy resins by a vanillin-derived cyclotriphosphazene-cored triazole compound , 2022, Polymer Degradation and Stability.
[8] Yudong Huang,et al. Interfacial self-healing performance of carbon fiber/epoxy based on postsynthetic modification of metal-organic frameworks , 2022, Composites Science and Technology.
[9] Xiuli Zhao,et al. Multi-functional epoxy vitrimers: Controllable dynamic properties, multiple-stimuli response, crack-healing and fracture-welding , 2022, Composites Science and Technology.
[10] Y. Eichen,et al. Novel Phosphazene-Based Flame Retardant Polyimine Vitrimers with Monomer-Recovery and High Performances , 2022, Chemical Engineering Journal.
[11] Jia Liu,et al. A core–shell-structured APP@COFs hybrid for enhanced flame retardancy and mechanical property of epoxy resin (EP) , 2022, Advanced Composites and Hybrid Materials.
[12] M. Miao,et al. Closed-Loop Recyclable Fully Bio-Based Epoxy Vitrimers from Ferulic Acid-Derived Hyperbranched Epoxy Resin , 2022, Macromolecules.
[13] Y. Mao,et al. Amine-Cured Glycidyl Esters as Dual Dynamic Epoxy Vitrimers , 2022, Macromolecules.
[14] Yu-Zhong Wang,et al. Recyclable, malleable and intrinsically flame-retardant epoxy resin with catalytic transesterification. , 2022, Chemosphere.
[15] Li Chen,et al. Catalyst-Free Dynamic Transesterification towards High-Performance and Fire-Safe Epoxy Vitrimer and Its Carbon Fiber Composite , 2022, Green Chemistry.
[16] Hai-Bo Zhao,et al. Advanced Flame‐Retardant Methods for Polymeric Materials , 2021, Advanced materials.
[17] Yu-Zhong Wang,et al. Biomass-derived dynamic covalent epoxy thermoset with robust mechanical properties and facile malleability , 2021, Chinese Chemical Letters.
[18] Maoyong Zhi,et al. Recent advances in the flame retardancy role of graphene and its derivatives in epoxy resin materials , 2021 .
[19] Wei Zhao,et al. Sustainable alternative for bisphenol A epoxy resin high-performance and recyclable lignin-based epoxy vitrimers , 2021 .
[20] Mikihiro Hayashi,et al. Achievement of a Highly Rapid Bond Exchange for Self-Catalyzed Polyester Vitrimers by Incorporating Tertiary Amino Groups on the Network Strands , 2021, ACS Applied Polymer Materials.
[21] Min-Hui Li,et al. Natural glycyrrhizic acid: improving stress relaxation rate and glass transition temperature simultaneously in epoxy vitrimers , 2021, Green Chemistry.
[22] Yihe Zhang,et al. Recent advances in recyclable thermosets and thermoset composites based on covalent adaptable networks , 2021 .
[23] Jianxin Jiang,et al. Recyclable, reprocessable, self-adhered and repairable carbon fiber reinforced polymers using full biobased matrices from camphoric acid and epoxidized soybean oil , 2021, Green Chemistry.
[24] Jian-Bing Zeng,et al. Biobased High-Performance Epoxy Vitrimer with UV Shielding for Recyclable Carbon Fiber Reinforced Composites , 2021 .
[25] Guoqiang Li,et al. Catalyst-free β-hydroxy phosphate ester exchange for robust fire-proof vitrimers , 2021 .
[26] Lei Song,et al. A novel phosphorous-containing polymeric compatibilizer: Effective reinforcement and flame retardancy in glass fiber reinforced polyamide 6 composites , 2021 .
[27] Huiru Ma,et al. Novel phosphorus/nitrogen/boron-containing carboxylic acid as co-curing agent for fire safety of epoxy resin with enhanced mechanical properties. , 2021, Journal of hazardous materials.
[28] Yen Wei,et al. Functional epoxy vitrimers and composites , 2020, Progress in Materials Science.
[29] P. Verge,et al. Polybenzoxazines: a sustainable platform for the design of fast responsive and catalyst-free vitrimers based on trans-esterification exchanges , 2021, Polymer Chemistry.
[30] Xiaming Feng,et al. Versatile Phosphate Diester-Based Flame Retardant Vitrimers via Catalyst-Free Mixed Transesterification , 2020, ACS applied materials & interfaces.
[31] Tuan Liu,et al. Carbon Fiber Reinforced Epoxy Vitrimer: Robust Mechanical Performance and Facile Hydrothermal Decomposition in Pure Water. , 2020, Macromolecular rapid communications.
[32] Qiuran Jiang,et al. An imine-containing epoxy vitrimer with versatile recyclability and its application in fully recyclable carbon fiber reinforced composites , 2020 .
[33] Jian-Bing Zeng,et al. Sustainable Epoxy Vitrimers from Epoxidized Soybean Oil and Vanillin , 2020 .
[34] B. Schartel,et al. Intrinsic flame retardant phosphonate-based vitrimers as a recyclable alternative for commodity polymers in composite materials , 2020, Polymer Chemistry.
[35] Tuan Liu,et al. Triethanolamine-Mediated Covalent Adaptable Epoxy Network: Excellent Mechanical Properties, Fast Repairing, and Easy Recycling , 2020 .
[36] Nathan J. Van Zee,et al. Vitrimers: Permanently crosslinked polymers with dynamic network topology , 2020, Progress in Polymer Science.
[37] Yu-Zhong Wang,et al. Novel phosphorus-containing imidazolium as hardener for epoxy resin aiming at controllable latent curing behavior and flame retardancy , 2020 .
[38] O. Crosby. transesterification , 2020, Catalysis from A to Z.
[39] Yefa Hu,et al. A liquid phosphorus-containing imidazole derivative as flame-retardant curing agent for epoxy resin with enhanced thermal latency, mechanical, and flame-retardant performances. , 2019, Journal of hazardous materials.
[40] Shuang Yang,et al. Facile construction of one-component intrinsic flame-retardant epoxy resin system with fast curing ability using imidazole-blocked bismaleimide , 2019, Composites Part B: Engineering.
[41] Xiangfang Peng,et al. Morphologies and properties of epoxy/multi-walled carbon nanotube nanocomposite foams prepared through the free-foaming and limited-foaming process , 2019, Composites Science and Technology.
[42] V. Placet,et al. New Reactive Isoeugenol Based Phosphate Flame Retardant: Toward Green Epoxy Resins , 2019, ACS Sustainable Chemistry & Engineering.
[43] T. Czigány,et al. Multifunctional application of carbon fiber reinforced polymer composites: Electrical properties of the reinforcing carbon fibers – A short review , 2019, Composites Part B: Engineering.
[44] Roberto J. J. Williams,et al. Epoxy vitrimers with a covalently bonded tertiary amine as catalyst of the transesterification reaction , 2019, European Polymer Journal.
[45] Yu-Zhong Wang,et al. Layer-by-layer assembled flame-retardant architecture toward high-performance carbon fiber composite , 2018, Chemical Engineering Journal.
[46] M. Abu‐Omar,et al. Recyclable and Malleable Epoxy Thermoset Bearing Aromatic Imine Bonds , 2018, Macromolecules.
[47] Shan-You Huang,et al. Performance comparison of flame retardant epoxy resins modified by DPO–PHE and DOPO–PHE , 2018, Polymer Degradation and Stability.
[48] Tuan Liu,et al. A Catalyst-Free Epoxy Vitrimer System Based on Multifunctional Hyperbranched Polymer , 2018, Macromolecules.
[49] Amol V. Pansare,et al. In Situ Nanoparticle Embedding for Authentication of Epoxy Composites , 2018, Advanced materials.
[50] Jiantong Li,et al. Design of a self-healing and flame-retardant cyclotriphosphazene-based epoxy vitrimer , 2018, Journal of Materials Science.
[51] Yu-Zhong Wang,et al. Epoxy resin flame-retarded via a novel melamine-organophosphinic acid salt: Thermal stability, flame retardance and pyrolysis behavior , 2017 .
[52] B. Szolnoki,et al. Reactive flame retardancy of cyanate ester/epoxy resin blends and their carbon fibre reinforced composites , 2016 .
[53] F. D. Du Prez,et al. Vitrimers: permanent organic networks with glass-like fluidity , 2015, Chemical science.
[54] Ludwik Leibler,et al. Silica-Like Malleable Materials from Permanent Organic Networks , 2011, Science.
[55] Philippe Dubois,et al. New prospects in flame retardant polymer materials: From fundamentals to nanocomposites , 2009 .
[56] U. Schuchardt,et al. Transesterification of vegetable oils: a review , 1998 .