Heat-treated glassy carbon under pressure exhibiting superior hardness, strength and elasticity

Glassy carbon (GC) is a type of non-graphitizing disordered carbon material at ambient pressure and high temperatures, which has been widely used due to its excellent mechanical properties. Here we report the changes in the microstructure and mechanical properties of GC treated at high pressures (up...

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Veröffentlicht in:Journal of Materiomics 2021-01, Vol.7 (1), p.177-184
Hauptverfasser: Hu, Meng, Zhang, Shuangshuang, Liu, Bing, Wu, Yingju, Luo, Kun, Li, Zihe, Ma, Mengdong, Yu, Dongli, Liu, Lingyu, Gao, Yufei, Zhao, Zhisheng, Kono, Yoshio, Bai, Ligang, Shen, Guoyin, Hu, Wentao, Zhang, Yang, Riedel, Ralf, Xu, Bo, He, Julong, Tian, Yongjun
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Sprache:eng
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Zusammenfassung:Glassy carbon (GC) is a type of non-graphitizing disordered carbon material at ambient pressure and high temperatures, which has been widely used due to its excellent mechanical properties. Here we report the changes in the microstructure and mechanical properties of GC treated at high pressures (up to 5 GPa) and high temperatures. The formation of intermediate sp2–sp3 phases is identified at moderate treatment temperatures before the complete graphitization of GC, by analyzing synchrotron X-ray diffraction, Raman spectra, and transmission electron microscopy images. The intermediate metastable carbon materials exhibit superior mechanical properties with hardness reaching up to 10 GPa and compressive strength reaching as high as 2.5 GPa, nearly doubling those of raw GC, and improving elasticity and thermal stability. The synthesis pressure used in this study can be achieved in the industry on a commercial scale, enabling the scalable synthesis of this type of strong, hard, and elastic carbon materials. [Display omitted] •A class of sp2–sp3 carbons are identified by compressing glassy carbon at 1–5 GPa and moderate temperatures.•The metastable carbons are retained to ambient condition and exhibit superior mechanical properties and thermal stability.•The synthesis of such carbon materials can be achieved in the industry on a commercial scale.
ISSN:2352-8478
DOI:10.1016/j.jmat.2020.06.007