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Copyright Nature Publishing Group Sep 2016

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-1 ), 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 106 cycles at 20% strain and 2.5 × 105 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.

Details

Title
Super-elastic and fatigue resistant carbon material with lamellar multi-arch microstructure
Author
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
Pages
12920
Publication year
2016
Publication date
Sep 2016
Publisher
Nature Publishing Group
e-ISSN
20411723
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
1823511931
Copyright
Copyright Nature Publishing Group Sep 2016