Baldanza Antonio, Pastore Carbone Maria Giovanna, Brondi Cosimo, Manikas Anastasios C, Mensitieri Giuseppe, Pavlou Christos, Scherillo Giuseppe, Galiotis Costas
Department of Chemical, Materials and Production Engineering, University of Naples Federico II, P.le Tecchio 80, 80125 Naples, Italy.
Institute of Chemical Engineering Sciences, Foundation for Research and Technology-Hellas (FORTH/ICE-HT), 26504 Patras, Greece.
Membranes (Basel). 2022 Jun 12;12(6):611. doi: 10.3390/membranes12060611.
Successful ways of fully exploiting the excellent structural and multifunctional performance of graphene and related materials are of great scientific and technological interest. New opportunities are provided by the fabrication of a novel class of nanocomposites with a nanolaminate architecture. In this work, by using the iterative lift-off/float-on process combined with wet depositions, we incorporated cm-size graphene monolayers produced via Chemical Vapour Deposition into a poly (methyl methacrylate) (PMMA) matrix with a controlled, alternate-layered structure. The produced nanolaminate shows a significant improvement in mechanical properties, with enhanced stiffness, strength and toughness, with the addition of only 0.06 vol% of graphene. Furthermore, oxygen and carbon dioxide permeability measurements performed at different relative humidity levels, reveal that the addition of graphene leads to significant reduction of permeability, compared to neat PMMA. Overall, we demonstrate that the produced graphene-PMMA nanolaminate surpasses, in terms of gas barrier properties, the traditional discontinuous graphene-particle composites with a similar filler content. Moreover, we found that the gas permeability through the nanocomposites departs from a monotonic decrease as a function of relative humidity, which is instead evident in the case of the pure PMMA nanolaminate. This work suggests the possible use of Chemical Vapour Deposition graphene-polymer nanolaminates as a flexible gas barrier, thus enlarging the spectrum of applications for this novel material.
充分利用石墨烯及相关材料优异的结构和多功能性能的成功方法具有重大的科学技术意义。新型纳米层状结构纳米复合材料的制备提供了新的机遇。在这项工作中,通过将迭代剥离/漂浮工艺与湿法沉积相结合,我们将通过化学气相沉积法制备的厘米尺寸石墨烯单层纳入具有可控交替层状结构的聚甲基丙烯酸甲酯(PMMA)基体中。所制备的纳米层压板在仅添加0.06体积%石墨烯的情况下,机械性能有显著改善,刚度、强度和韧性均增强。此外,在不同相对湿度水平下进行的氧气和二氧化碳渗透率测量表明,与纯PMMA相比,添加石墨烯会导致渗透率显著降低。总体而言,我们证明,就气体阻隔性能而言,所制备的石墨烯-PMMA纳米层压板优于具有相似填料含量的传统非连续石墨烯颗粒复合材料。此外,我们发现,通过纳米复合材料的气体渗透率并非随相对湿度单调下降,而在纯PMMA纳米层压板的情况下则明显如此。这项工作表明,化学气相沉积石墨烯-聚合物纳米层压板可能用作柔性气体阻隔材料,从而拓宽了这种新型材料的应用范围。