Jiang Guangyong, Ye Guotao, Feng Zefan, Qi Liangyuan, Wang Chuanshen, Xing Weiyi, Gui Zhou, Song Lei, Hu Yuan
State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei 230026, China.
State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei 230026, China.
J Colloid Interface Sci. 2025 Feb;679(Pt A):141-151. doi: 10.1016/j.jcis.2024.09.229. Epub 2024 Sep 29.
Enhancing the fire safety of epoxy resins (EPs) typically requires a significant amount of flame retardants, which often results in considerable degradation of their mechanical properties. To address this issue, a novel flame retardant known as PDCP@DPA@MXene was synthesized and integrated into EP to achieve notable improvements in flame retardancy, smoke suppression, and mechanical strength. By incorporating 1.5 wt% PDCP@DPA@MXene, the impact strength, tensile strength, and elongation at break of the resulting PDM-1.5 %/EP composite reached 12.1 kJ/m, 57.4 MPa, and 13.0, respectively, reflecting enhancements of 63.5 %, 18.4 %, and 17.1 % compared to the pure EP. The enhancement in tensile strength may be attributed to the high rigidity of TiCT MXene, which reinforces the EP matrix. Additionally, the intertwined structure of PDCP@DPA@MXene chains effectively mitigates material fracturing and absorbs impact forces, thus toughening the EP. The presence of phosphorus, nitrogen, and titanate in PDCP@DPA@MXene contributes to the formation of a more compact char layer. The PDM-1.5 %/EP sample achieved a V-0 rating in the vertical UL-94 test and exhibited a high limiting oxygen index of 32.0. Furthermore, the sample containing 2 wt% PDCP@DPA@MXene showed a significant reduction in peak heat release rate (p-HRR) and total heat release (THR), recording values of 689 kW/m and 71.9 MJ/m, which are decreases of 45.1 % and 26.9 %, respectively, compared to pure EP. Additionally, the incorporation of PDCP@DPA@MXene led to a reduction in CO production. These flame-retarded EPs demonstrate strong potential for various applications due to their elevated glass transition temperature and robust thermal stability.
提高环氧树脂(EP)的消防安全通常需要大量的阻燃剂,这往往会导致其机械性能大幅下降。为了解决这个问题,合成了一种名为PDCP@DPA@MXene的新型阻燃剂,并将其集成到EP中,以在阻燃性、抑烟性和机械强度方面取得显著改善。通过加入1.5 wt%的PDCP@DPA@MXene,所得PDM-1.5%/EP复合材料的冲击强度、拉伸强度和断裂伸长率分别达到12.1 kJ/m、57.4 MPa和13.0,与纯EP相比,分别提高了63.5%、18.4%和17.1%。拉伸强度的提高可能归因于TiCT MXene的高刚性,它增强了EP基体。此外,PDCP@DPA@MXene链的缠结结构有效地减轻了材料断裂并吸收了冲击力,从而使EP增韧。PDCP@DPA@MXene中磷、氮和钛酸盐的存在有助于形成更致密的炭层。PDM-1.5%/EP样品在垂直UL-94测试中达到V-0等级,并表现出32.0的高极限氧指数。此外,含有2 wt% PDCP@DPA@MXene的样品的峰值热释放速率(p-HRR)和总热释放(THR)显著降低,记录值分别为689 kW/m和71.9 MJ/m,与纯EP相比分别降低了45.1%和26.9%。此外,加入PDCP@DPA@MXene导致CO产量降低。这些阻燃EP由于其提高的玻璃化转变温度和强大的热稳定性,在各种应用中显示出强大的潜力。