Wang Lei, Wu Kun, Ding Chi-Jie, Min Jun-Jie, Chen Hao-Ping, Liu Zhi-Hao, Xi Dan-Ni, Zeng Hong-Yan, Jian Jian, Xu Sheng
School of Chemical Engineering, Xiangtan University, Xiangtan 411105, Hunan, China.
School of Chemistry and Chemical Engineering, Hunan University of Science and Technology, Xiangtan 411201, Hunan, China.
Int J Biol Macromol. 2023 Apr 30;235:123726. doi: 10.1016/j.ijbiomac.2023.123726. Epub 2023 Feb 16.
Due to the inherent defect of flammability of polypropylene (PP), a novel and highly efficient carbon microspheres@layered double hydroxides@copper lignosulfonate (CMSs@LDHs@CLS) flame retardant was designed and prepared, which was attributed to the strong electrostatic interaction between carbon microspheres (CMSs), layered double hydroxides (LDHs) and lignosulfonate as well as the chelation effect of lignosulfonate on copper ions, and then it was incorporated into the PP matrix. Significantly, CMSs@LDHs@CLS not only observably improved its dispersibility in PP matrix, but also simultaneously achieved excellent flame retardant properties for composites. With the addition of 20.0 % CMSs@LDHs@CLS, the limit oxygen index of CMSs@LDHs@CLS and PP composites (PP/CMSs@LDHs@CLS) reached 29.3 % and achieved the UL-94 V-0 rating. Cone calorimeter tests indicated that the peak heat release rate, total heat release and total smoke production of PP/CMSs@LDHs@CLS composites exhibited declines of 28.8 %, 29.2 % and 11.5 %, respectively, compared with those of PP/CMSs@LDHs composites. These advancements were attributed to the better dispersibility of CMSs@LDHs@CLS in PP matrix and illustrated that CMSs@LDHs@CLS observably reduced fire hazards of PP. The flame retardant property of CMSs@LDHs@CLS might relate to condensed phase flame retardant effect of char layer and catalytic charring of copper oxides.
由于聚丙烯(PP)固有的易燃缺陷,设计并制备了一种新型高效的碳微球@层状双氢氧化物@木质素磺酸铜(CMSs@LDHs@CLS)阻燃剂,这归因于碳微球(CMSs)、层状双氢氧化物(LDHs)与木质素磺酸盐之间的强静电相互作用以及木质素磺酸盐对铜离子的螯合作用,然后将其引入PP基体中。值得注意的是,CMSs@LDHs@CLS不仅显著提高了其在PP基体中的分散性,还同时使复合材料具有优异的阻燃性能。添加20.0%的CMSs@LDHs@CLS时,CMSs@LDHs@CLS与PP复合材料(PP/CMSs@LDHs@CLS)的极限氧指数达到29.3%,并达到UL-94 V-0等级。锥形量热仪测试表明,与PP/CMSs@LDHs复合材料相比,PP/CMSs@LDHs@CLS复合材料的热释放速率峰值、总热释放量和总产烟量分别下降了28.8%、29.2%和11.5%。这些进步归因于CMSs@LDHs@CLS在PP基体中更好的分散性,表明CMSs@LDHs@CLS显著降低了PP的火灾危险性。CMSs@LDHs@CLS的阻燃性能可能与炭层的凝聚相阻燃作用和氧化铜的催化成炭有关。