Green and economic flame retardant prepared by the one-step method for polylactic acid.
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Yincai Wu | Fenglong Lin | Lijun Song | Hongyan Cheng | Wayne Hsu | Shenglong Wang | Junwei Zeng | Qiuyin Zhu
[1] A. Yuen,et al. Synthesis of vanillin-based porphyrin for remarkably enhancing the toughness, UV-resistance and self-extinguishing properties of polylactic acid , 2023, Chemical Engineering Journal.
[2] Daohai Zhang,et al. Flame retardant properties and mechanism of PLA/P-PPD -Ph /ECE conjugated flame retardant composites , 2023, Frontiers in Chemistry.
[3] W. Dong,et al. Supper-Low-Addition Flame Retardant for the Fully Bio-based Poly(lactic acid) Composites , 2023, Polymer Degradation and Stability.
[4] Chunlin Du,et al. Preparation and Mechanism of Toughened and Flame-Retardant Bio-Based Polylactic Acid Composites , 2023, Polymers.
[5] Yincai Wu,et al. A novel lanthanum‐based phosphorus‐containing flame retardant agent and its application in polylactic acid , 2022, Journal of Applied Polymer Science.
[6] Jiali Gu,et al. One‐step flame retardant/hydrophobic finishing on cotton fabric with ammonium salt of hexamethylenediamine ‐ N, N, N′, N′ ‐ tetra (methylphosphonic acid) doped silica sol , 2022, Journal of Applied Polymer Science.
[7] Z. Lei,et al. Environmental Friendly Intumescent Flame Retardant Gives Epoxy Resin Excellent Fire Resistance and Mechanical Properties , 2022, Macromolecular Research.
[8] Xiu-li Wang,et al. Bio-Based Flame-Retardant and Smoke-Suppressing Wood Plastic Composites Enabled by Phytic Acid Tyramine Salt , 2022, ACS Sustainable Chemistry & Engineering.
[9] X. Qiu,et al. A simple and universal strategy for construction and application of silica-based flame-retardant nanostructure , 2022, Composites Part B: Engineering.
[10] Pengbo Liu,et al. Fabrication of highly efficient phenylphosphorylated chitosan bio-based flame retardants for flammable PLA biomaterial. , 2022, Carbohydrate polymers.
[11] Mauro Zammarano,et al. Ion – complexed chitosan formulations as effective fire-retardant coatings for wood substrates , 2022, Polymer Degradation and Stability.
[12] Qingwen Wang,et al. Sustainable, high-performance, flame-retardant waterborne wood coatings via phytic acid based green curing agent for melamine-urea-formaldehyde resin , 2022, Progress in Organic Coatings.
[13] S. Huo,et al. One-step and green synthesis of a bio-based high-efficiency flame retardant for poly (lactic acid) , 2021 .
[14] Bao-yun Xu,et al. Self-cleaning cotton fabrics with good flame retardancy via one-pot approach , 2021 .
[15] S. Huo,et al. Fabrication and Mechanism Study of Cerium-Based P, N-Containing Complexes for Reducing Fire Hazards of Polycarbonate with Superior Thermostability and Toughness. , 2021, ACS applied materials & interfaces.
[16] Hao Wang,et al. Transparent, highly thermostable and flame retardant polycarbonate enabled by rod-like phosphorous-containing metal complex aggregates , 2021 .
[17] R. A. Ilyas,et al. Polylactic Acid (PLA) Biocomposite: Processing, Additive Manufacturing and Advanced Applications , 2021, Polymers.
[18] H. Erbil,et al. Extrusion-Based 3D Printing Applications of PLA Composites: A Review , 2021, Coatings.
[19] Zhonglin Luo,et al. Synergistic flame retardant effect of piperazine salt and ammonium polyphosphate as intumescent flame retardant system for polypropylene , 2021 .
[20] Qi Wang,et al. Synergistic effect between piperazine pyrophosphate and melamine polyphosphate in flame retarded glass fiber reinforced polypropylene , 2021 .
[21] Xin Meng,et al. Effect of nickel phytate on flame retardancy of intumescent flame retardant polylactic acid , 2020, Polymers for Advanced Technologies.
[22] 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 .
[23] J. Tavares,et al. Surface modification of PLA nets intended for agricultural applications , 2020 .
[24] Yefa Hu,et al. A Liquid Phosphaphenanthrene-Derived Imidazole for Improved Flame Retardancy and Smoke Suppression of Epoxy Resin , 2020 .
[25] Guomin Xu,et al. A phosphorus- and nitrogen-containing DOPO derivative as flame retardant for polylactic acid (PLA) , 2020, Journal of Thermal Analysis and Calorimetry.
[26] Qi Zhao,et al. Improved Mechanical Properties and Flame Retardancy of Wood/PLA All‐Degradable Biocomposites with Novel Lignin‐Based Flame Retardant and TGIC , 2020 .
[27] S. Bourbigot,et al. Surface grafting of sepiolite with a phosphaphenanthrene derivative and its flame-retardant mechanism on PLA nanocomposites , 2019, Polymer Degradation and Stability.
[28] Hao Wang,et al. Improved flame resistance and thermo-mechanical properties of epoxy resin nanocomposites from functionalized graphene oxide via self-assembly in water , 2019, Composites Part B: Engineering.
[29] De‐yi Wang,et al. Effect of oxidized wood flour as functional filler on the mechanical, thermal and flame-retardant properties of polylactide biocomposites , 2019, Industrial Crops and Products.
[30] 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.
[31] Pingan Song,et al. Green and Scalable Fabrication of Core–Shell Biobased Flame Retardants for Reducing Flammability of Polylactic Acid , 2019, ACS Sustainable Chemistry & Engineering.
[32] J. Xin,et al. Thermal, crystalline and mechanical properties of flame retarded Poly(lactic acid) with a PBO-like small molecule - Phenylphosphonic Bis(2-aminobenzothiazole) , 2019, Polymer Degradation and Stability.
[33] Zhengping Fang,et al. Synergistic flame retardant mechanism of lanthanum phenylphosphonate and decabromodiphenyl oxide in polycarbonate , 2019 .
[34] Qing Nian Chan,et al. Synthesis of anhydrous manganese hypophosphite microtubes for simultaneous flame retardant and mechanical enhancement on poly(lactic acid) , 2018, Composites Science and Technology.
[35] Yuan Hu,et al. Manufacturing, mechanical and flame retardant properties of poly(lactic acid) biocomposites based on calcium magnesium phytate and carbon nanotubes , 2018, Composites Part A: Applied Science and Manufacturing.
[36] Bernhard Schartel,et al. Molecular Firefighting—How Modern Phosphorus Chemistry Can Help Solve the Challenge of Flame Retardancy , 2018, Angewandte Chemie.
[37] Xiu-li Wang,et al. Tough and flame-retardant poly(lactic acid) composites prepared via reactive blending with biobased ammonium phytate and in situ formed crosslinked polyurethane , 2018, Composites Communications.
[38] Ting Liu,et al. Synthesis of a novel polyphosphate and its application with APP in flame retardant PLA , 2018 .
[39] E. Papadopoulou,et al. Assessment of dietary exposure to organohalogen contaminants, legacy and emerging flame retardants in a Norwegian cohort. , 2017, Environment international.
[40] Hangjun Chen,et al. Physiochemical properties and food application of antimicrobial PLA film , 2017 .
[41] Henry Brem,et al. Polylactic acid (PLA) controlled delivery carriers for biomedical applications. , 2016, Advanced drug delivery reviews.
[42] Shang Gao,et al. A THEIC-based polyphosphate melamine intumescent flame retardant and its flame retardancy properties for polylactide , 2016 .
[43] Robert Langer,et al. Physical and mechanical properties of PLA, and their functions in widespread applications - A comprehensive review. , 2016, Advanced drug delivery reviews.
[44] Jiali Jiang,et al. Flame retardant properties and mechanism of an efficient intumescent flame retardant PLA composites , 2016 .
[45] Jiang Jiali,et al. Synergistic effect of a novel triazine charring agent and ammonium polyphosphate on the flame retardant properties of halogen-free flame retardant polypropylene composites , 2016 .
[46] P. Dubois,et al. Metallic phytates as efficient bio-based phosphorous flame retardant additives for poly(lactic acid) , 2015 .
[47] Yu-Zhong Wang,et al. Improvement of the flame retardancy of wood-fibre/polypropylene composites with ideal mechanical properties by a novel intumescent flame retardant system , 2015 .
[48] Fengxiu Zhang,et al. Enhancement of flame retardancy of cotton fabrics by grafting a novel organic phosphorous-based flame retardant , 2015, Cellulose.
[49] A. Avots,et al. Rigid Polyurethane Foam Thermal Insulation Protected with Mineral Intumescent Mat , 2014 .
[50] S. Shao,et al. Synthesis and Characterization of a Novel Flame Retardant 1,2-Bis (dimelaminium of 1-nitro-3,5-diphospha-4-oxa-3,5-dihydroxy cyclohexane) Ethane and its Application in PP , 2013 .
[51] Hsu-Chiang Kuan,et al. Study on thermal degradation and flame retardant property of halogen‐free polypropylene composites using XPS and cone calorimeter , 2013 .
[52] Lei Song,et al. Combustion properties and thermal degradation behavior of polylactide with an effective intumescent flame retardant , 2009 .
[53] Yu-Zhong Wang,et al. Influence of small difference in structure of polyamide charring agents on their flame-retardant efficiency in EVA , 2017 .