Song Kunpeng, Bi Xue, Yu Chuang, Pan Ye-Tang, Xiao Peng, Wang Junling, Song Jung-Il, He Jiyu, Yang Rongjie
National Engineering Research Center of Flame Retardant Materials, School of Materials Science & Engineering, Beijing Institute of Technology, Beijing 100081, P. R. China.
State Grid Jiangsu Electric Power Co., Ltd. Research Institute, Nanjing 211103, Jiangsu, P. R. China.
ACS Appl Mater Interfaces. 2024 Mar 27;16(12):15227-15241. doi: 10.1021/acsami.4c02187. Epub 2024 Mar 18.
Biobased-functionalized metal-organic frameworks (Bio-FUN-MOFs) stand out from the crowd of candidates in the flame-retardant field due to their multipathway flame-retardant mechanisms and green synthesis processes. However, exploring and designing Bio-FUN-MOFs tend to counteract the problem of compromising the flame-retardant advantages of MOFs themselves, which inevitably results in a waste of resources. Herein, a strategy in which MOFs are ecologically regulated through acid-base balance is presented for controllable preparation of Bio-FUN-MOFs by two birds with one stone, i.e., higher flame-retardant element loading and retention of more MOF structures. Specifically, the buffer layer is created on the periphery of ZIF-67 by weak etching of biobased alkali arginine to resist the excessive etching of ZIF-67 by phytic acid when loading phosphorus source and to preserve the integrity of internal crystals as much as possible. As a proof of concept, ZIF-67 was almost completely etched out by phytic acid in the absence of arginine. The arginine and phytic acid-functionalized ZIF-67 with yolk@shell structure (ZIF@Arg-Co-PA) obtained by this strategy, as a biobased flame retardant, reduces fire hazards for polyurea composites. At only 5 wt % loading, ZIF@Arg-Co-PA imparted polyurea composites with a limiting oxygen index of 23.2%, and the peaks of heat release rate, total heat release, and total smoke production were reduced by 43.8, 32.3, and 34.3%, respectively, compared to neat polyurea. Additionally, the prepared polyurea composites have acceptable mechanical properties. This work will shed light on the advanced structural design of polymer composites with excellent fire safety, especially environmentally friendly and efficient biobased MOF flame retardants.
生物基功能化金属有机框架材料(Bio-FUN-MOFs)因其多途径阻燃机理和绿色合成工艺,在阻燃领域众多候选材料中脱颖而出。然而,探索和设计Bio-FUN-MOFs往往会抵消MOFs自身的阻燃优势问题,这不可避免地导致资源浪费。在此,提出一种通过酸碱平衡对MOFs进行生态调控的策略,以实现一举两得地可控制备Bio-FUN-MOFs,即更高的阻燃元素负载量和保留更多的MOF结构。具体而言,通过生物基碱性精氨酸的弱蚀刻在ZIF-67的外围形成缓冲层,以在负载磷源时抵抗植酸对ZIF-67的过度蚀刻,并尽可能保持内部晶体的完整性。作为概念验证,在没有精氨酸的情况下,ZIF-67几乎被植酸完全蚀刻掉。通过该策略获得的具有蛋黄@壳结构的精氨酸和植酸功能化ZIF-67(ZIF@Arg-Co-PA)作为生物基阻燃剂,降低了聚脲复合材料的火灾危险性。仅在5 wt% 的负载量下,ZIF@Arg-Co-PA赋予聚脲复合材料的极限氧指数为23.2%,与纯聚脲相比,热释放速率、总热释放量和总产烟量的峰值分别降低了43.8%、32.3%和34.3%。此外,制备的聚脲复合材料具有可接受的机械性能。这项工作将为具有优异消防安全性能的聚合物复合材料的先进结构设计提供启示,特别是环保高效的生物基MOF阻燃剂。