Center for Multidimensional Carbon Materials, Institute for Basic Science (IBS), Ulsan, 44919, Republic of Korea.
Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing, 400714, P. R. China.
Adv Mater. 2018 Aug;30(35):e1707449. doi: 10.1002/adma.201707449. Epub 2018 Jul 11.
A folding technique is reported to incorporate large-area monolayer graphene films in polymer composites for mechanical reinforcement. Compared with the classic stacking method, the folding strategy results in further stiffening, strengthening, and toughening of the composite. By using a water-air-interface-facilitated procedure, an A5-size 400 nm thin polycarbonate (PC) film is folded in half 10 times to a ≈0.4 mm thick material (1024 layers). A large PC/graphene film is also folded by the same process, resulting in a composite with graphene distributed uniformly. A three-point bending test is performed to study the mechanical performance of the composites. With a low volume fraction of graphene (0.085%), the Young's modulus, strength, and toughness modulus are enhanced in the folded composite by an average of 73.5%, 73.2%, and 59.1%, respectively, versus the pristine stacked polymer films, or 40.2%, 38.5%, and 37.3% versus the folded polymer film, proving a remarkable mechanical reinforcement from the combined folding and reinforcement of graphene. These results are rationalized with combined theoretical and computational analyses, which also allow the synergistic behavior between the reinforcement and folding to be quantified. The folding approach could be extended/applied to other 2D nanomaterials to design and make macroscale laminated composites with enhanced mechanical properties.
一种折叠技术被报道用于将大面积单层石墨烯薄膜纳入聚合物复合材料中以进行力学增强。与经典的堆叠方法相比,折叠策略导致复合材料进一步增强、增强和增韧。通过使用水-空气界面辅助程序,将 A5 尺寸的 400nm 厚聚碳酸酯(PC)薄膜在水中对折 10 次,形成厚度约为 0.4mm 的材料(1024 层)。同样的过程也可以折叠大尺寸的 PC/石墨烯薄膜,从而得到石墨烯分布均匀的复合材料。通过三点弯曲测试研究了复合材料的力学性能。在低体积分数的石墨烯(0.085%)下,与原始堆叠聚合物薄膜相比,折叠复合材料的杨氏模量、强度和韧性模量分别平均提高了 73.5%、73.2%和 59.1%,或与折叠聚合物薄膜相比,提高了 40.2%、38.5%和 37.3%,证明了石墨烯的折叠和增强协同作用对力学性能的显著增强。这些结果通过理论和计算分析得到了合理化,这也允许量化增强和折叠之间的协同行为。这种折叠方法可以扩展/应用于其他二维纳米材料,以设计和制造具有增强力学性能的宏观层压复合材料。