材料科学
石墨烯
富勒烯
静水压力
复合材料
辅助
碳纤维
变形(气象学)
压缩性
流体静力平衡
剪切(地质)
抗压强度
纳米技术
热力学
复合数
物理
有机化学
化学
量子力学
作者
Zhisheng Zhao,Erik F. Wang,Hongping Yan,Yoshio Kono,Bin Wen,Ligang Bai,Feng Shi,Junfeng Zhang,Curtis Kenney‐Benson,Changyong Park,Yanbin Wang,Guoyin Shen
摘要
Type-II glass-like carbon is a widely used material with a unique combination of properties including low density, high strength, extreme impermeability to gas and liquid and resistance to chemical corrosion. It can be considered as a carbon-based nanoarchitectured material, consisting of a disordered multilayer graphene matrix encasing numerous randomly distributed nanosized fullerene-like spheroids. Here we show that under both hydrostatic compression and triaxial deformation, this high-strength material is highly compressible and exhibits a superelastic ability to recover from large strains. Under hydrostatic compression, bulk, shear and Young's moduli decrease anomalously with pressure, reaching minima around 1-2 GPa, where Poisson's ratio approaches zero, and then revert to normal behaviour with positive pressure dependences. Controlling the concentration, size and shape of fullerene-like spheroids with tailored topological connectivity to graphene layers is expected to yield exceptional and tunable mechanical properties, similar to mechanical metamaterials, with potentially wide applications.
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