State Key Laboratory of Fire Science, University of Science and Technology of China, 96 Jinzhai Road, Hefei, Anhui 230026, PR China; USTC-CityU Joint Advanced Research Center, Suzhou Key Laboratory of Urban Public Safety, Suzhou Institute for Advanced Study, University of Science and Technology of China, 166 Ren'ai Road, Suzhou, Jiangsu 215123, PR China.
State Key Laboratory of Fire Science, University of Science and Technology of China, 96 Jinzhai Road, Hefei, Anhui 230026, PR China.
J Hazard Mater. 2015 Aug 15;293:87-96. doi: 10.1016/j.jhazmat.2015.03.041. Epub 2015 Mar 21.
Novel spinel copper cobaltate (CuCo2O4)/graphitic carbon nitride (g-C3N4) (named C-CuCo2O4) nanohybrids with different weight ratios of g-C3N4 to CuCo2O4 were successfully synthesized via a facile hydrothermal method. Then the nanohybrids were added into the thermoplastic polyurethane (TPU) matrix to prepare TPU nanocomposites using a master batch-melt compounding approach. Morphological analysis indicated that CuCo2O4 nanoparticles were uniformly distributed on g-C3N4 nanosheets. Thermal analysis revealed that C-CuCo2O4-7 (proportion of g-C3N4 to CuCo2O4 of 93/7) was an optimal nanohybrid for the properties improvement of TPU. Incorporation of C-CuCo2O4-7 into TPU led to significant improvements in the onset decomposition temperature, temperature at maximal mass loss rate and char yields. The heat release rate and total heat release of TPU/C-CuCo2O4-7 decreased by 37% and 31.3%, respectively, compared with those of pure TPU. Furthermore, the amounts of pyrolysis gaseous products, including combustible volatiles and carbon monoxide (CO), were remarkably reduced, whereas, non-flammable gas (carbon dioxide) increased. Excellent dispersion of C-CuCo2O4-7 in TPU host was achieved, due to the synergistic effect between g-C3N4 and CuCo2O4. Enhancements in the thermal stability and flame retardancy were attributed to the explanations that g-C3N4 nanosheets showed the physical barrier effect and catalytic nitrogen monoxide (NO) decomposition, and that CuCo2O4 catalyzes the reaction of CO with NO and increased char residues.
通过简便的水热法成功合成了具有不同 g-C3N4 与 CuCo2O4 重量比的新型尖晶石铜钴酸盐(CuCo2O4)/石墨相氮化碳(g-C3N4)(命名为 C-CuCo2O4)纳米杂化材料。然后,通过母料熔融共混的方法将纳米杂化物添加到热塑性聚氨酯(TPU)基质中,制备 TPU 纳米复合材料。形态分析表明,CuCo2O4 纳米颗粒均匀分布在 g-C3N4 纳米片上。热分析表明,g-C3N4 与 CuCo2O4 的比例为 93/7 的 C-CuCo2O4-7 是改善 TPU 性能的最佳纳米杂化物。将 C-CuCo2O4-7 掺入 TPU 中,可显著提高起始分解温度、最大质量损失速率温度和残炭产率。与纯 TPU 相比,TPU/C-CuCo2O4-7 的放热率和总放热量分别降低了 37%和 31.3%。此外,热解气态产物的量,包括可燃挥发物和一氧化碳(CO),显著减少,而不可燃气体(二氧化碳)增加。由于 g-C3N4 和 CuCo2O4 之间的协同作用,C-CuCo2O4-7 在 TPU 基体中实现了优异的分散。热稳定性和阻燃性的提高归因于 g-C3N4 纳米片表现出的物理阻隔效应和催化一氧化氮(NO)分解,以及 CuCo2O4 催化 CO 与 NO 的反应并增加残炭的作用。