Author:
Kumara Gamaralalage R. A.,Pitawala Herath Mudiyanselage G. T. A.,Karunarathne Buddika,Mantilaka Mantilaka Mudiyanselage M. G. P. G.,Rajapakse Rajapakse Mudiyanselage G.,Huang Hsin-Hui,De Silva K. Kanishka H.,Yoshimura Masamichi
Abstract
AbstractA novel and simple flotation technique has been developed to prepare high-purity graphite from impure graphite. In this method, a suspension of pristine powdered graphite (PG) is dispersed and stirred in water without adding froth formers or supportive chemicals. This makes fine particles of graphite move upwards and float on water. X-ray diffraction (XRD) analysis reveals that the floated graphite (FG) has a lower c-axis parameter, indicating the removal of interlayer impurities. A notable increase in the intensity ratio of the D band to G band in the Raman spectra indicates that the FG has more edge defects due to their smaller crystallite sizes. Transmission electron microscopic (TEM) analysis shows the number of layers in FG has been reduced to 16 from 68 in PG. The absence of C=O vibration of Fourier Transformed Infrared (FT-IR) spectroscopy in treated and untreated samples suggests that their layers are not significantly oxidized. However, X-ray photoelectron spectroscopic (XPS) analysis shows the presence of C–O–C ether functionalities, possibly on edge planes. Further, the product has higher purity with increased carbon content. Therefore, the technique is helpful for the value enhancement of graphite, the reduction of the chemical cost of the conventional techniques, environmental friendliness, and improvement of its applications.
Publisher
Springer Science and Business Media LLC
Reference27 articles.
1. Kausar, A., Rafique, I. & Muhammad, B. Aerospace application of polymer nanocomposite with carbon nanotube, graphite, graphene oxide, and nanoclay. Polym. Plast. Technol. Eng. 56, 1438–1456 (2017).
2. Nasir, S., Hussein, M. Z., Zainal, Z. & Yusof, N. A. Carbon-based nanomaterials/allotropes: A glimpse of their synthesis, properties and some applications. Materials 11, 1–24 (2018).
3. Simandl, G. J., Paradis, S. & Akam, C. Graphite deposit types their origin and economic significance. In Proceedings of Symposium on Strategic and Critical Materials (eds Simandl, G. J. & Neetz, M.) 163–171 (British Columbia, 2015).
4. Jara, A. D., Betemariam, A., Woldetinsae, G. & Kim, J. Y. Purification, application and current market trend of natural graphite: A review. Int. J. Min. Sci. Technol. 29, 671–689 (2019).
5. Hewathilake, H. P. T. S. et al. Geochemical, structural and morphological characterization of vein graphite deposits of Sri Lanka: Witness to carbon rich fluid activity. J. Mineral. Petrol. Sci. 113, 96–105 (2018).
Cited by
9 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献