Jung Sungmin, Kim Yoon Sang, Kim Young Nam, Jeong Seunghwan, Naqvi Shabbir Madad, Hassan Tufail, Narayanasamy Mugilan, Cho Sooyeong, Jung Yong Chae, Kim Jaewoo, Koo Chong Min
School of Advanced Materials Science and Engineering, Sungkyunkwan University, Seobu-ro 2066, Jangan-gu, Suwon-si, Gyeonggi-do, 16419, Republic of Korea.
Convergence Research Center for Solutions to Electromagnetic Interference in Future-Mobility, Korea Institute of Science and Technology (KIST), Seoul, 02792, Republic of Korea.
Adv Mater. 2024 Dec;36(50):e2408674. doi: 10.1002/adma.202408674. Epub 2024 Nov 6.
Developing a single-component epoxy system is challenging but crucial for advanced thermoset applications. Unfortunately, conventional latent curing agents using chemical or physical passivation do not provide satisfactory storage stability and the necessary property requirements. Here, it is demonstrated that all-in-one epoxy/MXene nanocomposite system, comprising epoxy resin, polymeric imidazole latent curing agent beads (PILCAB), and TiCT MXene, exhibits excellent storage stability, improved flame retardancy, and enhanced mechanical strength. PILCABs, prepared through a Diels-Alder (DA) crosslinking reaction between furan groups of poly(imidazolyl methacrylate)-random poly (furfuryl methacrylate) (PIm-r-PFu) copolymer and bismaleimide (BMI), exhibit excellent storage stability, as stable as under 60 °C storage due to the imidazole reactivity being suppressed synergistically by both physical and chemical passivation mechanisms. TiCT MXene flakes, surface-functionalized with alkylated 3,4-dihydroxyl-L-phenylalanine, exhibit excellent compatibility with the epoxy matrix. Consequently, the enhanced storage stability, flame retardancy, and mechanical strength of the all-in-one epoxy/MXene nanocomposite are attributed to the strong DA bond formation in latent curing agent, efficient charring capability of MXene and BMI, and the catalytic effect of the MXene. This study opens new avenues for designing and developing single-component epoxy systems that satisfy demanding requirements, including storage stability, mechanical strength, and flame retardancy, which are essential for practical applications.
开发单组分环氧体系具有挑战性,但对于先进的热固性应用至关重要。不幸的是,使用化学或物理钝化的传统潜伏固化剂不能提供令人满意的储存稳定性和必要的性能要求。在此,证明了由环氧树脂、聚合物咪唑潜伏固化剂珠粒(PILCAB)和TiCT MXene组成的一体化环氧/MXene纳米复合材料体系具有优异的储存稳定性、改善的阻燃性和增强的机械强度。通过聚(甲基丙烯酸咪唑酯)-无规聚(甲基丙烯酸糠酯)(PIm-r-PFu)共聚物的呋喃基团与双马来酰亚胺(BMI)之间的狄尔斯-阿尔德(DA)交联反应制备的PILCAB表现出优异的储存稳定性,由于咪唑反应性通过物理和化学钝化机制协同抑制,在60°C储存下同样稳定。用烷基化的3,4-二羟基-L-苯丙氨酸进行表面功能化的TiCT MXene薄片与环氧基体表现出优异的相容性。因此,一体化环氧/MXene纳米复合材料增强的储存稳定性、阻燃性和机械强度归因于潜伏固化剂中形成的强DA键、MXene和BMI的有效炭化能力以及MXene的催化作用。这项研究为设计和开发满足苛刻要求(包括储存稳定性、机械强度和阻燃性,这些对于实际应用至关重要)的单组分环氧体系开辟了新途径。