Zhang Xuan, Vyatskikh Andrey, Gao Huajian, Greer Julia R, Li Xiaoyan
Center for Advanced Mechanics and Materials, Applied Mechanics Laboratory, Department of Engineering Mechanics, Tsinghua University, 100084 Beijing, China.
Division of Engineering and Applied Science, California Institute of Technology, Pasadena, CA 91125.
Proc Natl Acad Sci U S A. 2019 Apr 2;116(14):6665-6672. doi: 10.1073/pnas.1817309116. Epub 2019 Mar 18.
It has been a long-standing challenge in modern material design to create low-density, lightweight materials that are simultaneously robust against defects and can withstand extreme thermomechanical environments, as these properties are often mutually exclusive: The lower the density, the weaker and more fragile the material. Here, we develop a process to create nanoarchitected carbon that can attain specific strength (strength-to-density ratio) up to one to three orders of magnitude above that of existing micro- and nanoarchitected materials. We use two-photon lithography followed by pyrolysis in a vacuum at 900 °C to fabricate pyrolytic carbon in two topologies, octet- and iso-truss, with unit-cell dimensions of ∼2 μm, beam diameters between 261 nm and 679 nm, and densities of 0.24 to 1.0 g/cm Experiments and simulations demonstrate that for densities higher than 0.95 g/cm the nanolattices become insensitive to fabrication-induced defects, allowing them to attain nearly theoretical strength of the constituent material. The combination of high specific strength, low density, and extensive deformability before failure lends such nanoarchitected carbon to being a particularly promising candidate for applications under harsh thermomechanical environments.
在现代材料设计中,制造低密度、轻质且同时对缺陷具有鲁棒性并能承受极端热机械环境的材料一直是一项长期挑战,因为这些特性往往相互排斥:密度越低,材料越脆弱易碎。在此,我们开发了一种制造纳米结构碳的工艺,其比强度(强度与密度之比)可比现有的微结构和纳米结构材料高出一至三个数量级。我们采用双光子光刻,随后在900°C的真空中进行热解,以制造两种拓扑结构(八面体和等桁架)的热解碳,其单胞尺寸约为2μm,梁直径在261nm至679nm之间,密度为0.24至1.0g/cm³。实验和模拟表明,对于密度高于0.95g/cm³的情况,纳米晶格对制造引起的缺陷不敏感,使其能够达到组成材料的近理论强度。高比强度、低密度以及失效前的广泛可变形性相结合,使得这种纳米结构碳成为在恶劣热机械环境下应用的特别有前景的候选材料。