Cai Jun, Chen Haoyu, Li Youjian, Akbarzadeh Abdolhamid
Department of Bioresource Engineering McGill University Montreal QC H9X 3V9 Canada.
Department of Mechanical Engineering McGill University Montreal QC H3A 0C3 Canada.
Small Sci. 2022 Nov 13;2(12):2200039. doi: 10.1002/smsc.202200039. eCollection 2022 Dec.
Bioinspired materials often achieve superior mechanical properties owing to their microscale architectures that resemble design motifs in biological materials. The bioinspired architectures can be extended to nanoscale, where carbon-based materials, including graphene and carbon nanotubes, are excellent candidates as building blocks. This study introduces carbon-based nanoarchitected metamaterials inspired by seven biological design motifs, i.e., cellular, gradient, tubular, fibrous, helicoidal, suture, and layered structures. Numerical studies based on molecular dynamics simulation along with continuum-based finite element analysis are conducted for each bioinspired design to examine the unique mechanical properties, namely specific stiffness, specific strength, failure strain, and specific energy absorption, under tensile/shear loading conditions. Different deformation and failure mechanisms found by molecular simulation and continuum mechanics are discussed. The numerical results show that the mechanical properties of the introduced bioinspired and carbon-based nanoscale designs may surpass the performance of the conventional carbon-based counterparts. The developed nanoarchitected metamaterials demonstrate instances of possibilities for filling the empty regions in the Ashby charts to attain lightweight advanced materials that can also break the trade-off between strength and failure strain. These findings impart lessons from the constitutive structure of biological materials to form the next generation of multifunctional architected metamaterials with rationally designed nano-architectures.
受生物启发的材料通常因其微观结构类似于生物材料中的设计图案而具有卓越的机械性能。受生物启发的结构可以扩展到纳米尺度,其中包括石墨烯和碳纳米管在内的碳基材料是作为构建单元的极佳候选材料。本研究介绍了受七种生物设计图案启发的碳基纳米结构超材料,即细胞、梯度、管状、纤维、螺旋、缝合和层状结构。针对每种受生物启发的设计,进行了基于分子动力学模拟以及基于连续介质的有限元分析的数值研究,以考察在拉伸/剪切载荷条件下的独特机械性能,即比刚度、比强度、断裂应变和比能量吸收。讨论了通过分子模拟和连续介质力学发现的不同变形和失效机制。数值结果表明,所引入的受生物启发的碳基纳米尺度设计的机械性能可能超过传统碳基材料的性能。所开发的纳米结构超材料展示了在阿什比图中填补空白区域以获得轻质先进材料的可能性实例,这些材料还可以打破强度与断裂应变之间的权衡。这些发现从生物材料的本构结构中汲取经验教训,以形成具有合理设计的纳米结构的下一代多功能结构超材料。