Riad Keroles B, Hoa Suong V, Wood-Adams Paula M
Laboratory for the Physics of Advanced Materials, Department of Chemical and Material Engineering, Concordia University, 1550 De Maisonneuve Boulevard West, Montreal, Quebec, Canada H3G 2J2.
Concordia Center for Composites, Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, 1550 De Maisonneuve Boulevard West, Montreal, Quebec, Canada H3G 2J2.
ACS Omega. 2022 Jun 9;7(24):21192-21198. doi: 10.1021/acsomega.2c02084. eCollection 2022 Jun 21.
Graphene is the strongest known material. However, the challenge of translating that strength from the microscale to the more useful macroscale remains unmet. Preparing solid structures from self-assembled graphene oxide liquid crystals has allowed the creation of paper and fibers with excellent mechanical properties. Conventionally, vacuum filtration, wet spinning, and freeze-drying are used to prepare such structures from graphene oxide liquid crystals. Here, we introduce photocuring as an additional option to create solid structures of self-assembled graphene oxide liquid crystals that allows for thicker samples and other shapes to be realized. The photocured graphene oxide paper prepared here exhibited mechanical properties comparable to those of benchmark samples prepared by vacuum filtration.
石墨烯是已知最强的材料。然而,将这种强度从微观尺度转化到更实用的宏观尺度的挑战仍未得到解决。由自组装氧化石墨烯液晶制备固体结构,使得制造出具有优异机械性能的纸张和纤维成为可能。传统上,真空过滤、湿法纺丝和冷冻干燥用于从氧化石墨烯液晶制备此类结构。在此,我们引入光固化作为一种额外的方法来创建自组装氧化石墨烯液晶的固体结构,从而能够实现更厚的样品以及其他形状。此处制备的光固化氧化石墨烯纸展现出与通过真空过滤制备的基准样品相当的机械性能。