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具有层状多拱形微观结构的超弹性和抗疲劳碳材料。

Super-elastic and fatigue resistant carbon material with lamellar multi-arch microstructure.

作者信息

Gao Huai-Ling, Zhu Yin-Bo, Mao Li-Bo, Wang Feng-Chao, Luo Xi-Sheng, Liu Yang-Yi, Lu Yang, Pan Zhao, Ge Jin, Shen Wei, Zheng Ya-Rong, Xu Liang, Wang Lin-Jun, Xu Wei-Hong, Wu Heng-An, Yu Shu-Hong

机构信息

Division of Nanomaterials &Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Suzhou Nano Science and Technology, Department of Chemistry, CAS Center for Excellence in Nanoscience, Hefei Science Center of CAS, University of Science and Technology of China, Hefei 230026, China.

CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, University of Science and Technology of China, Hefei, Anhui 230027, China.

出版信息

Nat Commun. 2016 Sep 27;7:12920. doi: 10.1038/ncomms12920.

Abstract

Low-density compressible materials enable various applications but are often hindered by structure-derived fatigue failure, weak elasticity with slow recovery speed and large energy dissipation. Here we demonstrate a carbon material with microstructure-derived super-elasticity and high fatigue resistance achieved by designing a hierarchical lamellar architecture composed of thousands of microscale arches that serve as elastic units. The obtained monolithic carbon material can rebound a steel ball in spring-like fashion with fast recovery speed (∼580 mm s), and demonstrates complete recovery and small energy dissipation (∼0.2) in each compress-release cycle, even under 90% strain. Particularly, the material can maintain structural integrity after more than 10 cycles at 20% strain and 2.5 × 10 cycles at 50% strain. This structural material, although constructed using an intrinsically brittle carbon constituent, is simultaneously super-elastic, highly compressible and fatigue resistant to a degree even greater than that of previously reported compressible foams mainly made from more robust constituents.

摘要

低密度可压缩材料具有多种应用,但往往受到结构衍生的疲劳失效、弹性弱、恢复速度慢和能量耗散大的阻碍。在此,我们展示了一种具有微观结构衍生超弹性和高抗疲劳性的碳材料,该材料通过设计一种由数千个作为弹性单元的微米级拱形组成的分级层状结构而实现。所获得的整体碳材料能够以类似弹簧的方式快速恢复速度(约580毫米/秒)反弹钢球,并且即使在90%应变下,在每个压缩-释放循环中也能实现完全恢复和小能量耗散(约0.2)。特别地,该材料在20%应变下经过10次以上循环以及在50%应变下经过2.5×10次循环后仍能保持结构完整性。这种结构材料虽然由本质上脆性的碳成分构成,但同时具有超弹性、高可压缩性和抗疲劳性,其程度甚至超过了先前报道的主要由更坚固成分制成的可压缩泡沫材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/298a/5052633/be29f0a42284/ncomms12920-f1.jpg

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