4.6 Article

Microscopic origin of graphene nanosheets derived from coal-tar pitch by treating Al4C3 as the intermediate

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 23, Issue 21, Pages 12449-12455

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1cp01575c

Keywords

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Funding

  1. National Key Research and Development Program of China [2017YFB0701701]
  2. National Natural Science Foundation of China [21973012, 51872049]
  3. Scientific Research Project of Jinjiang Science and Education Park of Fuzhou University [2019-JJFDKY-01]
  4. ''Qishan Scholar'' Scientific Research Startup Project of Fuzhou University

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This study introduces a simple and efficient method to synthesize graphene nanosheets from coal-tar pitch, which has been validated through both experimental and theoretical approaches. The research reveals the microscopic origin of Al4C3 decomposition and the occurrence of chemical etching process.
The development of environmentally friendly, simple process and low cost synthesis methods for preparing graphene nanosheets (GNs) has attracted global interest. In this work, a simple and efficient method to synthesize GNs deriving from coal-tar pitch has been proposed from both experimental and theoretical point of views. The XRD, TEM and Raman results demonstrate that precursor Al4C3 could provide a growth environment for the final product of GNs. Innovatively, we have unraveled the microscopic origin for the decomposition of Al4C3 based on density functional theory calculations. It is highlighted that the surface energies and the analysis of elastic constants indicate the fact that the chemical etching process in Al4C3 can happen, which is similar to the exfoliation of well-known transition metal carbides MXenes. Furthermore, different bond breaking mechanisms have been found in Al4C3 at applied tensile and shear strains from the electron localization functions and stress-strain results. Our study not only offers an efficient method to synthesize GNs, but also to unravel the microscopic mechanism of fabrication by theoretical calculations.

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