Chen Ke, Tang Xuke, Jia Binbin, Chao Cezhou, Wei Yan, Hou Junyu, Dong Leiting, Deng Xuliang, Xiao Ting-Hui, Goda Keisuke, Guo Lin
Beijing Advanced Innovation Center for Biomedical Engineering, Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, Beijing, China.
Department of Chemistry, The University of Tokyo, Tokyo, Japan.
Nat Mater. 2022 Oct;21(10):1121-1129. doi: 10.1038/s41563-022-01292-4. Epub 2022 Jul 7.
Graphene oxide (GO) and reduced GO possess robust mechanical, electrical and chemical properties. Their nanocomposites have been extensively explored for applications in diverse fields. However, due to the high flexibility and weak interlayer interactions of GO nanosheets, the flexural mechanical properties of GO-based composites, especially in bulk materials, are largely constrained, which hinders their performance in practical applications. Here, inspired by the amorphous/crystalline feature of the heterophase within nacreous platelets, we present a centimetre-sized, GO-based bulk material consisting of building blocks of GO and amorphous/crystalline leaf-like MnO hexagon nanosheets adhered together with polymer-based crosslinkers. These building blocks are stacked and hot-pressed with further crosslinking between the layers to form a GO/MnO-based layered (GML) bulk material. The resultant GML bulk material exhibits a flexural strength of 231.2 MPa. Moreover, the material exhibits sufficient fracture toughness and strong impact resistance while being light in weight. Experimental and numerical analyses indicate that the ordered heterophase structure and synergetic crosslinking interactions across multiscale interfaces lead to the superior mechanical properties of the material. These results are expected to provide insights into the design of structural materials and potential applications of high-performance GO-based bulk materials in aerospace, biomedicine and electronics.
氧化石墨烯(GO)和还原氧化石墨烯具有强大的机械、电学和化学性能。它们的纳米复合材料已在多个领域得到广泛探索。然而,由于氧化石墨烯纳米片具有高柔韧性和较弱的层间相互作用,基于氧化石墨烯的复合材料的弯曲机械性能,尤其是在块状材料中,受到很大限制,这阻碍了它们在实际应用中的性能表现。在此,受珍珠质薄片中异相的非晶/晶体特征启发,我们展示了一种厘米级的、基于氧化石墨烯的块状材料,它由氧化石墨烯和非晶/晶体叶状MnO六边形纳米片的构建单元通过聚合物基交联剂粘结在一起组成。这些构建单元堆叠并热压,层间进一步交联,形成一种基于GO/MnO的层状(GML)块状材料。所得的GML块状材料的弯曲强度为231.2MPa。此外,该材料具有足够的断裂韧性和强抗冲击性,同时重量轻。实验和数值分析表明,有序的异相结构和跨多尺度界面的协同交联相互作用导致了该材料优异的机械性能。这些结果有望为结构材料的设计以及高性能基于氧化石墨烯的块状材料在航空航天、生物医学和电子领域的潜在应用提供见解。