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The electron irradiation effect on reduced graphene oxide paper.

Authors :
Zhen, Xiaojuan
Huang, Yifan
Wang, Guangyi
Feng, Zhanzu
Yang, Shengsheng
Jiang, Kai
Zhao, Lei
Source :
Radiation Physics & Chemistry. Sep2024, Vol. 222, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

The reduced graphene oxide paper (rGOP) has been irradiated with different energy and dose, namely 200 keV and 1000 keV electron with dose ranging from 2 × 1014 e/cm−2 × 1016 e/cm−2, using a ground-based irradiation simulator. The electrical properties, surface morphology, structural defects, interlayer spacing, thermal stability of rGOP before and after irradiation were systematically investigated. Results indicate that the electrical resistance and the I D /I G ratio increases pose irradiation, indicative of defect presence. The ratio of total carbon to total oxygen atoms (C/O) is 4.7 in pristine materials, with no obvious alteration in materials irradiated with 200 keV electron, while increased to 6.8 subjected to 1000 keV electrons. The 1000 keV electron irradiated material exhibits improved morphology from the SEM image. The above results were further verified by the change in the spacing of graphene layers in the material. FLUKA simulation results demonstrated that the 1000 keV electron can pass through penetrate the rGOP, while the 200 keV electron is in the near surface for irradiated materials. Changes in resistance of rGOP are attributed to defects, structural disorder, oxygen-containing functional groups, and variations in the total C/O atom ratio. The results show that the structure and properties of rGOP can be influenced by irradiation energy and dose of electron. • The different energy and dose electron irradiation effect on reduced graphene oxide paper was studied. • The defects, disorder structure and total C/O ratio of materials were changed. • The surface electrical property, surface morphology and thermal stability and of materials was influenced. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0969806X
Volume :
222
Database :
Academic Search Index
Journal :
Radiation Physics & Chemistry
Publication Type :
Academic Journal
Accession number :
177880482
Full Text :
https://doi.org/10.1016/j.radphyschem.2024.111814