Polyelectrolyte as highly efficient flame retardant to epoxy: Synthesis, characterization and mechanism

被引:13
作者
Chen, Xiaosui [1 ,2 ]
Lin, Xuebao [2 ]
Ye, Wen [2 ,3 ,4 ]
Xu, Baoyun [3 ,4 ]
Wang, De-Yi [2 ,5 ]
机构
[1] South Cent Univ Nationalities, Coll Chem & Mat Sci, Wuhan 430074, Hubei, Peoples R China
[2] IMDEA Mat Inst, High Performance Polymer Nanocomposites Grp, C-Er Kandel, 2, Getafe 28906, Madrid, Spain
[3] Shanghai Res Inst Chem Ind Co LTD, Sino Spanish Joint Res Ctr Adv Mat Technol, Shanghai 200062, Peoples R China
[4] Shanghai Res Inst Chem Ind Co LTD, Shanghai Engn Res Ctr Funct FR Mat, Shanghai 200062, Peoples R China
[5] Univ Francisco Vitoria, Ctra Pozuelo-Majadahonda Km 1800, Pozuelo De Alarcon 28223, Madrid, Spain
关键词
Epoxy resins; Polyelectrolyte; Flame retardancy; Smoke suppression; MODIFIED AMMONIUM POLYPHOSPHATE; THERMAL-STABILITY; SMOKE SUPPRESSION; FACILE SYNTHESIS; FIRE RETARDANCY; GRAPHENE OXIDE; COMPLEX; ACID; GREEN; COMPOSITES;
D O I
10.1016/j.polymdegradstab.2022.110181
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
To balance the flame retardancy and mechanical properties of epoxy (EP) resin, a polyelectrolyte complex (PPA-PEI, P content of 9.27%) was facilely prepared in aqueous solution by the neutralization reaction between polyethyleneimine (PEI) and phenyl phosphonic acid (PPA). Just 4 wt% PPA-PEI could endow the relating EP composite with satisfied flame retardancy (limited oxygen index (LOI) of 29.0%, UL-94 V-0 rating). It also shows significant reduction in total heat release (THR), peak heat release (PHRR), total smoke production (TSP) of 52.5%, 52.3%, and 22.7%, respectively. Analyzed from the char morphologies and chemical structures, it can be induced that the good flame retardancy is mainly attributed to the highly yielded char residue with well swelled and multicellular structures possessing good barrier and thermal insulation properties. Meanwhile, the dilution and free radical scavenging effects also work well in the gaseous phase. Before the PPA-PEI molecules start to collapse into cluster seriously to worsen the dispersability within EP matrix, EP/4 wt%PPA-PEI can maintain similar tensile strength and glass transition temperature (T-g), and display improved Yong's and storage modulus compared with neat EP. Accordingly, this presented work provides a low-cost and promising approach for preparing flame-retardant EP/PEC composites with excellent comprehensive performance.
引用
收藏
页数:12
相关论文
共 45 条
[1]   Tannin-furanic foams modified by soybean protein isolate (SPI) and industrial lignin substituting formaldehyde addition [J].
Chen, Xinyi ;
Li, Jinxing ;
Pizzi, Antonio ;
Fredon, Emmanuel ;
Gerardin, Christine ;
Zhou, Xiaojian ;
Du, Guanben .
INDUSTRIAL CROPS AND PRODUCTS, 2021, 168
[2]   A bio-resourced phytic acid/chitosan polyelectrolyte complex for the flame retardant treatment of wool fabric [J].
Cheng, Xian-Wei ;
Guan, Jin-Ping ;
Yang, Xu-Hong ;
Tang, Ren-Cheng ;
Yao, Fan .
JOURNAL OF CLEANER PRODUCTION, 2019, 223 :342-349
[3]   Improved flame resistance and thermo-mechanical properties of epoxy resin nanocomposites from functionalized graphene oxide via self-assembly in water [J].
Fang, Fang ;
Ran, Shiya ;
Fang, Zhengping ;
Song, Pingan ;
Wang, Hao .
COMPOSITES PART B-ENGINEERING, 2019, 165 :406-416
[4]   Eco-friendly flame retardant and dripping-resistant of polyester/cotton blend fabrics through layer-by-layer assembly fully bio-based chitosan/phytic acid coating [J].
Fang, Yinchun ;
Sun, Weihao ;
Li, Junwei ;
Liu, Hailong ;
Liu, Xinhua .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2021, 175 (175) :140-146
[5]   Ion-specific effect on self-cleaning performances of polyelectrolyte-functionalized membranes and the underlying nanomechanical mechanism [J].
Gong, Lu ;
Zhang, Jiawen ;
Wang, Wenda ;
Xiang, Li ;
Pan, Mingfei ;
Yang, Wenshuai ;
Han, Linbo ;
Wang, Jianmei ;
Yan, Bin ;
Zeng, Hongbo .
JOURNAL OF MEMBRANE SCIENCE, 2021, 634
[6]   Phosphorus-containing organic-inorganic hybrid nanoparticles for the smoke suppression and flame retardancy of thermoplastic polyurethane [J].
Huang, Sheng-Chao ;
Deng, Cong ;
Zhao, Ze-Yong ;
Chen, Hong ;
Gao, Yu-Yang ;
Wang, Yu-Zhong .
POLYMER DEGRADATION AND STABILITY, 2020, 178
[7]   Electrostatic action induced interfacial accumulation of layered double hydroxides towards highly efficient flame retardance and mechanical enhancement of thermoplastic polyurethane/ammonium polyphosphate [J].
Huang, Sheng-Chao ;
Deng, Cong ;
Wang, Shui-Xiu ;
Wei, Wen-Chao ;
Chen, Hong ;
Wang, Yu-Zhong .
POLYMER DEGRADATION AND STABILITY, 2019, 165 :126-136
[8]   A Branched Polyelectrolyte Complex Enables Efficient Flame Retardant and Excellent Robustness for Wood/Polymer Composites [J].
Huang, Yanping ;
Zhang, Shuai ;
Chen, He ;
Ding, Chunxiang ;
Xuan, Yan ;
Pan, Mingzhu ;
Mei, Changtong .
POLYMERS, 2020, 12 (11) :1-13
[9]   Synthesis of a bio-based piperazine phytate flame retardant for epoxy resin with improved flame retardancy and smoke suppression [J].
Huang, Zhenyu ;
Wang, Zhengzhou .
POLYMERS FOR ADVANCED TECHNOLOGIES, 2021, 32 (11) :4282-4295
[10]   Biobased polyelectrolyte multilayer-coated hollow mesoporous silica as a green flame retardant for epoxy resin [J].
Jiang, Shu-Doug ;
Tang, Gang ;
Chen, Junmin ;
Huang, Zheng-Qi ;
Hu, Yuan .
JOURNAL OF HAZARDOUS MATERIALS, 2018, 342 :689-697