Fabrication of a flame retardant, strong mechanical toughness and antimicrobial polylactic acid by chitosan Schiff base/ ammonium polyphosphate
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Xianze Yin | Hua Wang | Li Ma | Zongmin Zhu | Chunzu Cheng | Yadong Wang
[1] Zongmin Zhu,et al. Furfural-based P/N/S flame retardant towards high-performance epoxy resins with flame retardancy, toughness, low dielectric properties and UV resistance , 2023, Polymer Degradation and Stability.
[2] P. Song,et al. Aqueous Self-Assembly of Bio-Based Flame Retardants for Fire-Retardant, Smoke-Suppressive, and Toughened Polylactic Acid , 2022, ACS Sustainable Chemistry & Engineering.
[3] Yuezhan Feng,et al. Supramolecular engineered ultrathin MXene towards fire safe polylactic acid composites , 2022, Composites Communications.
[4] Pingan Song,et al. Fabrication of anti-dripping and flame-retardant polylactide modified with chitosan derivative/aluminum hypophosphite. , 2022, Carbohydrate polymers.
[5] G. Yin,et al. Bio-based flame retardants to polymers: A review , 2022, Advanced Industrial and Engineering Polymer Research.
[6] Luoxin Wang,et al. Transparent, flame retardant, mechanically strengthened and low dielectric EP composites enabled by a reactive bio-based P/N flame retardant , 2022, Polymer Degradation and Stability.
[7] W. Wang,et al. A triazine-based hyperbranched char-forming agent for efficient intumescent flame retardant Poly(lactic acid) composites , 2022, Composites Communications.
[8] Xue-bao Lin,et al. A novel highly efficient intumescent flame-retardant polypropylene: Thermal degradation, flame retardance and mechanism , 2022, Journal of Polymer Research.
[9] Yuezhan Feng,et al. Engineering titanium carbide ultra-thin nanosheets for enhanced fire safety of intumescent flame retardant polylactic acid , 2022, Composites Part B: Engineering.
[10] Junjie Wang,et al. Epoxy resin modified with chitosan derivatives and DOPO: Improved flame retardancy, mechanical properties and transparency , 2022, Polymer Degradation and Stability.
[11] Pengbo Liu,et al. Fabrication of highly efficient phenylphosphorylated chitosan bio-based flame retardants for flammable PLA biomaterial. , 2022, Carbohydrate polymers.
[12] S. Bourbigot,et al. A Si-containing polyphosphoramide via green chemistry for fire-retardant polylactide with well-preserved mechanical and transparent properties , 2021, Chemical Engineering Journal.
[13] Feihua Yang,et al. High performance epoxy resin composites modified with multifunctional thiophene/phosphaphenanthrene-based flame retardant: Excellent flame retardance, strong mechanical property and high transparency , 2021, Composites Part B: Engineering.
[14] S. Bourbigot,et al. Advances and challenges in eco-benign fire-retardant polylactide , 2021, Materials Today Physics.
[15] Hongfei Li,et al. Improving the flame retardancy and accelerating the degradation of poly (lactic acid) in soil by introducing fully bio-based additives. , 2021, International journal of biological macromolecules.
[16] Fude Liu,et al. Preparation of a halogen-free flame retardant and its effect on the poly(L-lactic acid) as the flame retardant material , 2021, Polymer.
[17] Junjie Wang,et al. Synergistic effect of chitosan derivative and DOPO for simultaneous improvement of flame retardancy and mechanical property of epoxy resin , 2021, Cellulose.
[18] R. Yuen,et al. A facile and sustainable approach for simultaneously flame retarded, UV protective and reinforced poly(lactic acid) composites using fully bio-based complexing couples , 2021 .
[19] S. Bourbigot,et al. Mechanically robust and flame-retardant polylactide composites based on molecularly-engineered polyphosphoramides , 2021 .
[20] R. Yuen,et al. Microporous boron based intumescent macrocycle flame retardant for poly(lactic acid) with excellent UV protection , 2020 .
[21] Lei Song,et al. Metal-organic frameworks for flame retardant polymers application: A critical review , 2020 .
[22] Xiu-li Wang,et al. Synergy effect between quaternary phosphonium ionic liquid and ammonium polyphosphate toward flame retardant PLA with improved toughness , 2020 .
[23] Yun-Wen Pan,et al. Simultaneously enhancing the fire retardancy and crystallization rate of biodegradable polylactic acid with piperazine-1,4-diylbis(diphenylphosphine oxide) , 2020 .
[24] G. Malucelli. Flame-Retardant Systems Based on Chitosan and Its Derivatives: State of the Art and Perspectives , 2020, Molecules.
[25] Jianhui Li,et al. Antibacterial activity of chitosan and its derivatives and their interaction mechanism with bacteria: Current state and perspectives , 2020 .
[26] Bin Yu,et al. A facile one-step synthesis of highly efficient melamine salt reactive flame retardant for epoxy resin , 2020, Journal of Materials Science.
[27] Pingan Song,et al. Core–Shell Bioderived Flame Retardants Based on Chitosan/Alginate Coated Ammonia Polyphosphate for Enhancing Flame Retardancy of Polylactic Acid , 2020 .
[28] Hao Wang,et al. One-pot scalable fabrication of an oligomeric phosphoramide towards high-performance flame retardant polylactic acid with a submicron-grained structure , 2020 .
[29] J. Xin,et al. Simultaneous fire safety enhancement and mechanical reinforcement of poly(lactic acid) biocomposites with hexaphenyl (nitrilotris(ethane-2,1-diyl))tris(phosphoramidate). , 2019, Journal of hazardous materials.
[30] Zong-Min Zhu,et al. Synthesis of a novel phosphorus-nitrogen flame retardant and its application in epoxy resin , 2019, Polymer Degradation and Stability.
[31] Xiu-li Wang,et al. Dual effect of dynamic vulcanization of biobased unsaturated polyester: Simultaneously enhance the toughness and fire safety of Poly(lactic acid) , 2019, Composites Part B: Engineering.
[32] Hongfei Li,et al. Improving the flame retardancy and water resistance of polylactic acid by introducing polyborosiloxane microencapsulated ammonium polyphosphate , 2019, Composites Part B: Engineering.
[33] J. Xin,et al. Highly efficient flame retardant and smoke suppression mechanism of boron modified graphene Oxide/Poly(Lactic acid) nanocomposites , 2019, Carbon.
[34] Juan Li,et al. Effects of furan-phosphamide derivative on flame retardancy and crystallization behaviors of poly(lactic acid) , 2019, Chemical Engineering Journal.
[35] Zong-Min Zhu,et al. Influence of a novel P/N-containing oligomer on flame retardancy and thermal degradation of intumescent flame-retardant epoxy resin , 2019, Polymer Degradation and Stability.
[36] C. Weder,et al. Bio‐Inspired, Self‐Toughening Polymers Enabled by Plasticizer‐Releasing Microcapsules , 2019, Advanced materials.
[37] Bin Yu,et al. Advances in Flame Retardant Poly(Lactic Acid) , 2018, Polymers.
[38] Ting Liu,et al. Synthesis of a novel polyphosphate and its application with APP in flame retardant PLA , 2018 .
[39] Xi Chen,et al. High Strength and Hydrophilic Chitosan Microspheres for the Selective Enrichment of N-Glycopeptides. , 2017, Analytical chemistry.
[40] C. Stevens,et al. Recent developments in antibacterial and antifungal chitosan and its derivatives. , 2017, Carbohydrate polymers.
[41] S. Zhang,et al. The effect of chitosan on the flammability and thermal stability of polylactic acid/ammonium polyphosphate biocomposites. , 2017, Carbohydrate polymers.
[42] Yu-Zhong Wang,et al. A review on flame retardant technology in China. Part I: development of flame retardants , 2009 .
[43] Y. Wang,et al. Properties of hydrophilic chitosan network membranes by introducing binary crosslink agents , 2008 .
[44] G. Tosi,et al. Susceptibility of dibutyryl chitin and regenerated chitin fibres to deacylation and depolymerization by lipases , 2004 .
[45] Joseph Green,et al. A Review of Phosphorus-Containing Flame Retardants , 1992 .
[46] D. Hui,et al. A review of application of ammonium polyphosphate as intumescent flame retardant in thermoplastic composites , 2016 .
[47] S. Bourbigot,et al. Reactive extrusion of PLA and of PLA/carbon nanotubes nanocomposite: processing, characterization and flame retardancy , 2011 .