Han Sensen, Yang Fei, Li Qingsong, Sui Guoxin, Kalimuldina Gulnur, Araby Sherif
Shi-Changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China.
School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China.
ACS Appl Mater Interfaces. 2023 Apr 5;15(13):17054-17069. doi: 10.1021/acsami.2c20482. Epub 2023 Mar 21.
A supramolecular self-assembly method was used to prepare melamine cyanurate/α-ZrP nanosheets (MCA@α-ZrP) as a novel hybrid flame retardant for thermoplastic polyurethane (TPU). Microstructure characterization showed a uniform dispersion with strong interfacial strength of the MCA@α-ZrP hybrid within the TPU matrix, leading to simultaneous enhancements in both mechanical and fire-safety properties. The TPU/MCA@α-ZrP nanocomposite exhibited 43.1 and 47.0% increments in tensile strength and fracture energy, respectively. Thanks to the platelike structure of α-ZrP coupled with the dilution effect of MCA (releasing nonflammable gases), the hybrid MCA@α-ZrP reduced the peak heat release rate of TPU by 49.7% in comparison with 15.8 and 35.4% for TPU/MCA and TPU/ α-ZrP composites, respectively. The fire performance index of TPU is significantly promoted by 90% upon adding the MCA@α-ZrP hybrid. Additionally, LOI and UL-94 tests showed high flame-retarding characteristics for the MCA@α-ZrP hybrid. For example, LOI increased from 20.0% for neat TPU to 25.5% for the MCA@α-ZrP hybrid system, and it was rated V-1 from the UL-94 test. Furthermore, the smoke production and pyrolysis products were significantly suppressed by adding the MCA@α-ZrP hybrid into TPU. Interfacial hydrogen bonding, the dilution effect of MCA, forming a "labyrinth" layer, and catalytic action of α-ZrP nanosheets synergistically improved both the mechanical performance and flame retardancy of TPU nanocomposites. This work provides a new example of integrating traditional flame retardants with functional nanosheets to develop polymeric nanocomposites with high mechanical and fire-safety properties.
采用超分子自组装方法制备了三聚氰胺氰尿酸盐/α-磷酸锆纳米片(MCA@α-ZrP),作为热塑性聚氨酯(TPU)的新型杂化阻燃剂。微观结构表征表明,MCA@α-ZrP杂化物在TPU基体中均匀分散且具有很强的界面强度,从而使机械性能和防火安全性同时得到提高。TPU/MCA@α-ZrP纳米复合材料的拉伸强度和断裂能分别提高了43.1%和47.0%。由于α-ZrP的片状结构以及MCA的稀释作用(释放不可燃气体),与TPU/MCA和TPU/α-ZrP复合材料相比,杂化的MCA@α-ZrP使TPU的峰值热释放速率降低了49.7%,而TPU/MCA和TPU/α-ZrP复合材料分别降低了15.8%和35.4%。添加MCA@α-ZrP杂化物后,TPU的防火性能指数显著提高了90%。此外,极限氧指数(LOI)和UL-94测试表明MCA@α-ZrP杂化物具有高阻燃特性。例如,纯TPU的LOI为20.0%,而MCA@α-ZrP杂化体系的LOI提高到了25.5%,并且在UL-94测试中被评为V-1级。此外,向TPU中添加MCA@α-ZrP杂化物可显著抑制烟雾产生和热解产物。界面氢键、MCA的稀释作用、形成“迷宫”层以及α-ZrP纳米片的催化作用协同提高了TPU纳米复合材料的机械性能和阻燃性。这项工作为将传统阻燃剂与功能性纳米片结合以开发具有高机械性能和防火安全性的聚合物纳米复合材料提供了一个新的范例。