Please use this identifier to cite or link to this item: https://doi.org/10.3389/fmats.2018.00029
Title: Facile MoS2 growth on reduced graphene-oxide via liquid phase method
Authors: Tzitzios, V.
Dimos, K.
Alhassan, S.M.
Mishra, R.
Kouloumpis, A.
Gournis, D.
Boukos, N.
Roldan, M.A.
Idrobo, J.-C.
Karakassides, M.A.
Basina, G.
Alwahedi, Y.
Jin Kim, H.
Katsiotis, M.S.
Fardis, M.
Borisevich, A.
Pennycook, S.J. 
Pantelides, S.T.
Papavassiliou, G.
Keywords: Chemical synthesis
Colloidal solutions
Hybrid
Layered materials
MoS2
Reduced graphene oxide
Issue Date: 2018
Publisher: Frontiers Media S.A.
Citation: Tzitzios, V., Dimos, K., Alhassan, S.M., Mishra, R., Kouloumpis, A., Gournis, D., Boukos, N., Roldan, M.A., Idrobo, J.-C., Karakassides, M.A., Basina, G., Alwahedi, Y., Jin Kim, H., Katsiotis, M.S., Fardis, M., Borisevich, A., Pennycook, S.J., Pantelides, S.T., Papavassiliou, G. (2018). Facile MoS2 growth on reduced graphene-oxide via liquid phase method. Frontiers in Materials 5 : 29. ScholarBank@NUS Repository. https://doi.org/10.3389/fmats.2018.00029
Rights: Attribution 4.0 International
Abstract: Single and few-layers MoS2 were uniformly grown on the surface of chemically reduced graphene oxide (r-GO), via a facile liquid phase approach. The method is based on a simple functionalization of r-GO with oleyl amine which seems to affect significantly the MoS2 way of growth. Scanning-transmission-electron microscopy (STEM) analysis revealed the presence of single-layer MoS2 on the surface of a few-layers r-GO. This result was also confirmed by atomic-force microscopy (AFM) images. X-ray photoemission spectroscopy (XPS) and Raman spectroscopy were used for in-depth structural characterization. Furthermore, we have successfully applied the method to synthesize MoS2 nanocomposites with multi wall carbon nanotubes (CN) and carbon nanofibers (CNF). The results demonstrate clearly the selective MoS2 growth on both carbon-based supports. © 2018 Tzitzios, Dimos, Alhassan, Mishra, Kouloumpis, Gournis, Boukos, Roldan, Idrobo, Karakassides, Basina, Alwahedi, Jin Kim, Katsiotis, Fardis, Borisevich, Pennycook, Pantelides and Papavassiliou.
Source Title: Frontiers in Materials
URI: https://scholarbank.nus.edu.sg/handle/10635/206441
ISSN: 2296-8016
DOI: 10.3389/fmats.2018.00029
Rights: Attribution 4.0 International
Appears in Collections:Elements
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