Qi Penghao, Chen Xindong, Zhu Hanxing, Lyu Yongtao, Zhang Bu, Peng Qing, Feng Xiqiao, Fan Tongxiang, Zhang Di
School of Engineering, Cardiff University, Cardiff, CF24 3AA, UK.
Institute of Biomechanics and Medical Engineering, AML, Department of Engineering Mechanics, Tsinghua University, Beijing, 100084, China.
Adv Mater. 2025 Aug;37(33):e2502546. doi: 10.1002/adma.202502546. Epub 2025 Jun 2.
Multilayer graphene platelet films (MGPFs) are widely studied for their exceptional mechanical, electrical, and chemical properties. The elastic properties and deformation mechanisms of MGPFs are highly sensitive to their geometric parameters, including graphene platelet size, graphene area fraction, and layer count. Despite extensive experimental and theoretical efforts, systematically quantifying these effects remains a significant challenge, severely hindering the design of high-performance MGPFs. Here, realistic random 3D periodic representative volume element (RVE) models of MGPFs are constructed to perform simulations, quantify the effects of different geometric parameters on all their five independent elastic properties, and uncover the dominant deformation mechanisms. The results reveal that the dimensionless platelet size, graphene area fraction, and number of platelet layers significantly affect the elastic properties, with detailed quantifications provided for their relationships. The effects of defects on the elastic properties are also explored, offering insights into the dominant deformation mechanisms. Validation against experimental data confirms that the developed RVE models and dimensionless results apply to various multilayer laminate composites, including MGPFs, MXene, graphene oxide films, and nacre-like materials. The findings provide a robust framework and pave the way for optimizing the design of MGPFs and other laminate composites, enabling their potential in diverse applications.
多层石墨烯片层薄膜(MGPFs)因其优异的机械、电学和化学性能而受到广泛研究。MGPFs的弹性性能和变形机制对其几何参数高度敏感,这些参数包括石墨烯片层尺寸、石墨烯面积分数和层数。尽管进行了大量的实验和理论研究,但系统地量化这些影响仍然是一项重大挑战,严重阻碍了高性能MGPFs的设计。在此,构建了MGPFs的真实随机三维周期性代表性体积单元(RVE)模型来进行模拟,量化不同几何参数对其所有五个独立弹性性能的影响,并揭示主要的变形机制。结果表明,无量纲的片层尺寸、石墨烯面积分数和片层层数显著影响弹性性能,并详细量化了它们之间的关系。还探讨了缺陷对弹性性能的影响,为主要变形机制提供了见解。与实验数据的验证证实,所开发的RVE模型和无量纲结果适用于各种多层层压复合材料,包括MGPFs、MXene、氧化石墨烯薄膜和类珍珠母材料。这些发现提供了一个强大的框架,为优化MGPFs和其他层压复合材料的设计铺平了道路,使其在各种应用中发挥潜力。