EventsMOL2NET'18, Conference on Molecular, Biomed., Comput. & Network Science and Engineering, 4th ed.
Published
This submission belongs to the session 08. NANOBIOMAT-04: Nanotechnology & Biomaterials Sci. Congress, Jackson & Fargo, USA, 2018 of the event MOL2NET'18, Conference on Molecular, Biomed., Comput. & Network Science and Engineering, 4th ed.
Published date
13 Nov, 2018
Citation
Thamer ALOUI, Najla FOURATI, Hajer GUERMAZI, Chouki ZERROUKI, Samir GUERMAZI, Polyanionic Molybdate Powders as Promising Electrode Materials Based on NASICON Fe₂ (MoO₄)₃ Networks, in Proceedings of MOL2NET'18, Conference on Molecular, Biomed., Comput. & Network Science and Engineering, 4th ed., 15 January 2018–20 January 2019, MDPI: Basel, Switzerland, doi: 10.3390/mol2net-04-05642
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Polyanionic Molybdate Powders as Promising Electrode Materials Based on NASICON Fe2 (MoO4)3 Networks

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Hajer GUERMAZI 3
Samir GUERMAZI 3
Chouki ZERROUKI 2
1. Sfax university- Faculty science of Sfax research unit physics of insulators semi-insulator materials (PMISI), France
2. Paris saclay university-ENS Cachan SATIE Laboratory (Cnam, Paris)
3. Sfax university- Faculty science of Sfax research unit physics of insulators semi-insulator materials (PMISI)
Abstract

In this paper, Fe2(MoO4)3 (FMO) powders have been synthesized via an easy precipitation approach. The microstructural properties of the synthesized product were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS). Two FMO samples, 1 and 2, were synthetized using two reactants, sodium molybdate and ammonium heptamolybdate, respectively. In both cases, pure monoclinic structure with space group P2/a has been identified, via XRD measurements. The crystallite sizes, estimated from Scherer’s formula, are of (38 ± 2) and (46 ± 4) nm according to the precursor used. Besides, the sample 1 showed a relatively larger specific surface area of 42.77 m2/g, than the sample 2 with 35.28 m2/g. The EDS microanalysis confirms the stoichiometric amount of the chemical elements. The SEM micrographs reveal a regular distribution of particles shape that presented grain size of order of (192±52) nm for sample 1. While, the sample 2 presents grains of (215±59) nm size, with a less regular shape.

Keywords
Iron molydates
transition metal
SEM
microstructural analysis
Manuscript
Poster
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