State Key Laboratory of Fire Science, University of Science and Technology of China, Anhui 230026, PR China.
Institute of Environmental Materials and Applications, College of Materials and Environmental Engineering, Hangzhou Dianzi University, 310018 Hangzhou, China.
J Hazard Mater. 2018 Jun 15;352:57-69. doi: 10.1016/j.jhazmat.2018.03.021. Epub 2018 Mar 13.
The suppression effect of graphene in the fire hazards and smoke toxicity of polymer composites has been seriously limited by both mass production and weak interfacial interaction. Though the electrochemical preparation provides an available approach for mass production, exfoliated graphene could not strongly bond with polar polymer chains. Herein, mussel-inspired functionalization of electrochemically exfoliated graphene was successfully processed and added into polar thermoplastic polyurethane matrix (TPU). As confirmed by SEM patterns of fracture surface, functionalized graphene possessing abundant hydroxyl could constitute a forceful chains interaction with TPU. By the incorporation of 2.0 wt % f-GNS, peak heat release rate (pHRR), total heat release (THR), specific extinction area (SEA), as well as smoke produce rate (SPR) of TPU composites were approximately decreased by 59.4%, 27.1%, 31.9%, and 26.7%, respectively. A probable mechanism of fire retardant was hypothesized: well-dispersed f-GNS constituted tortuous path and hindered the exchange process of degradation product with barrier function. Large quantities of degradation product gathered round f-GNS and reacted with flame retardant to produce the cross-linked and high-degree graphited residual char. The simple functionalization for electrochemically exfoliated graphene impels the application of graphene in the fields of flame retardant composites.
石墨烯在聚合物复合材料中的火灾危害和烟雾毒性的抑制作用受到大规模生产和弱界面相互作用的严重限制。尽管电化学制备为大规模生产提供了一种可行的方法,但剥离的石墨烯不能与极性聚合物链强烈结合。在此,成功地对电化学剥离的石墨烯进行了贻贝启发的官能化处理,并将其添加到极性热塑性聚氨酯基体(TPU)中。通过断裂表面的 SEM 图案证实,具有丰富羟基的官能化石墨烯可以与 TPU 构成强烈的链相互作用。通过加入 2.0wt%的 f-GNS,TPU 复合材料的峰值放热率(pHRR)、总热释放量(THR)、比消光面积(SEA)和烟释放率(SPR)分别约降低了 59.4%、27.1%、31.9%和 26.7%。提出了一种可能的阻燃机理:分散良好的 f-GNS 构成了曲折的路径,阻碍了降解产物与屏障功能的交换过程。大量的降解产物聚集在 f-GNS 周围,并与阻燃剂反应生成交联和高度石墨化的残余炭。电化学剥离石墨烯的简单官能化推动了石墨烯在阻燃复合材料领域的应用。