Phosphorylated cardanol-formaldehyde oligomers as flame-retardant and toughening agents for epoxy thermosets

被引:90
作者
Guo, Wenwen [1 ,2 ]
Wang, Xin [1 ]
Huang, Jiali [1 ]
Mu, Xiaowei [1 ]
Cai, Wei [1 ]
Song, Lei [1 ]
Hu, Yuan [1 ]
机构
[1] Univ Sci & Technol China, State Key Lab Fire Sci, 96 Jinzhai Rd, Hefei 230026, Anhui, Peoples R China
[2] Jiangnan Univ, Coll Text Sci & Engn, Key Lab Ecotext, Minist Educ, 1800 Lihu Ave, Wuxi 214122, Jiangsu, Peoples R China
关键词
Cardanol; Epoxy thermoset; Flame-retardant; Toughening;
D O I
10.1016/j.cej.2021.130192
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Presently, flammability and brittleness are two major problems for EP which has restricted its development and application in industrial. Under the global advocacy of green and sustainable development, developing bio-based flame-retardant and toughening agents which can endow epoxy resins with high fire resistance and satisfactory mechanical properties is of significant demand for its industrial applications. Herein, three kinds of phosphorylated cardanol-formaldehyde oligomers (CF-PO(OPh)(2), CF-POPh2, and CF-PPh2) were synthesized and introduced into epoxy thermosets. The incorporation of CF-PO(OPh)(2), CF-POPh2, and CF-PPh2 can remarkably improve the mechanical performance of EP composites, especially the tensile strength and elongation at break. With 10 wt% of CF-PO(OPh)(2), CF-POPh2, and CF-PPh2, the tensile strength of epoxy thermosets reached 67.1, 74.5, and 70.3 MPa, respectively; the elongation at break of epoxy thermosets was raised by 133.3%, 162.5%, and 150.0%, respectively, as compared to neat EP. EP composites containing CF-PO(OPh)(2), CF-POPh2, and CF-PPh2 also exhibited remarkably enhanced flame retardancy simultaneously. Besides, CF-PO(OPh)(2) exhibited the best flame-retardant efficiency by comparison with CF-POPh2 and CF-PPh2, and the results manifested that epoxy composite with only 2.5 wt% CF-PO(OPh)(2) could pass the UL-94 V-0 rating as well as a high LOI value of 28%, and the LOI value of EP/CF-PO(OPh)(2)-10 reached up to 32%. Moreover, CF-PO(OPh)(2) also displayed an excellent catalytic charring effect and great suppression effect on heat and smoke release. The cone calorimeter test results showed that EP composite containing 10 wt% CF-PO(OPh)(2) exhibited the most significant PHRR reduction which was 53.8% lower than pure EP, and the char yield of EP/CF-PO(OPh)(2)-10 after the cone calorimeter test was 14.0% which was much higher than that of pure EP (5.7%). This work opens a new vision for the synthesis of bio-based flame-retardant and toughening agents with a special oligomeric structure combining rigidity with flexibility, and contributes to the production of high-performance epoxy thermosets.
引用
收藏
页数:16
相关论文
共 55 条
[1]   Synergistic local toughening of high performance epoxy-matrix composites using blended block copolymer-thermoplastic thin films [J].
Bahrami, Amir ;
Cordenier, Francois ;
Van Velthem, Pascal ;
Ballout, Wael ;
Pardoen, Thomas ;
Nysten, Bernard ;
Bailly, Christian .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2016, 91 :398-405
[2]   Structure and thermal properties of phosphorus-containing polyol synthesized from cardanol [J].
Bo, Caiying ;
Hu, Lihong ;
Jia, Puyou ;
Liang, Bingchuang ;
Zhou, Jing ;
Zhou, Yonghong .
RSC ADVANCES, 2015, 5 (129) :106651-106660
[3]   Barrier function of graphene for suppressing the smoke toxicity of polymer/black phosphorous nanocomposites with mechanism change [J].
Cai, Wei ;
Li, Zhaoxin ;
Mu, Xiaowei ;
He, Lingxin ;
Zhou, Xia ;
Guo, Wenwen ;
Song, Lei ;
Hu, Yuan .
JOURNAL OF HAZARDOUS MATERIALS, 2021, 404
[4]   Self-assembly followed by radical polymerization of ionic liquid for interfacial engineering of black phosphorus nanosheets: Enhancing flame retardancy, toxic gas suppression and mechanical performance of polyurethane [J].
Cai, Wei ;
Hu, Yixin ;
Pan, Ying ;
Zhou, Xia ;
Chu, Fukai ;
Han, Longfei ;
Mu, Xiaowei ;
Zhuang, Zeyuan ;
Wang, Xin ;
Xing, Weiyi .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2020, 561 :32-45
[5]   Tribological properties of epoxy lubricating composite coatings reinforced with core-shell structure of CNF/MoS2 hybrid [J].
Chen, Beibei ;
Jia, Yuhan ;
Zhang, Mengjie ;
Liang, Hongyu ;
Li, Xiang ;
Yang, Jin ;
Yan, Fengyuan ;
Li, Changsheng .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2019, 122 :85-95
[6]   Renewable vanillin-based flame retardant toughening agent with ultra-low phosphorus loading for the fabrication of high-performance epoxy thermoset [J].
Chu, Fukai ;
Ma, Chao ;
Zhang, Tao ;
Xu, Zhoumei ;
Mu, Xiaowei ;
Cai, Wei ;
Zhou, Xia ;
Ma, Shicong ;
Zhou, Yifan ;
Hu, Weizhao ;
Song, Lei .
COMPOSITES PART B-ENGINEERING, 2020, 190
[7]   Tannic Acid as a Bio-Based Modifier of Epoxy/Anhydride Thermosets [J].
Fei, Xiaoma ;
Zhao, Fangqiao ;
Wei, Wei ;
Luo, Jing ;
Chen, Mingqing ;
Liu, Xiaoya .
POLYMERS, 2016, 8 (09)
[8]   Cure kinetics behavior of a functionalized graphitic nanofiber modified epoxy resin [J].
Fu, Yu ;
Zhong, Wei-Hong .
THERMOCHIMICA ACTA, 2011, 516 (1-2) :58-63
[9]   Toughening of epoxy novolac resin using cardanol based flexibilizers [J].
Gour, Rajeshwari S. ;
Kodgire, Vivek V. ;
Badiger, Manohar V. .
JOURNAL OF APPLIED POLYMER SCIENCE, 2016, 133 (16)
[10]   Trace electrosprayed nanopolystyrene facilitated dispersion of multiwalled carbon nanotubes: Simultaneously strengthening and toughening epoxy [J].
Gu, Hongbo ;
Zhang, Hongyuan ;
Ma, Chao ;
Xu, Xiaojiang ;
Wang, Yaqing ;
Wang, Zicheng ;
Wei, Renbo ;
Liu, Hu ;
Liu, Chuntai ;
Shao, Qian ;
Mai, Xianmin ;
Guo, Zhanhu .
CARBON, 2019, 142 :131-140