In this study, 1D structures based on α-MnO2 nanowires and β-MnO2 nanorods were fabricated by a single-step hydrothermal synthesis and evaluated as cathode components for microbial fuel cells (MFCs). The role of crystallinity and morphology on electrocatalytic activity was investigated by combining X-ray diffraction, scanning electron microscopy, and X-ray photoelectron spectroscopy with an electrochemical analysis of oxygen reduction reaction at the surface of MnO2-based structures. Among the synthesized composites, β-MnO2 nanorods showed higher ORR activity thanks to the synergy between the rod-like morphology and the nitrogen presence in/on the carbon support which provides a more accessible surface for oxygen adsorption and consequent reduction. MFCs assembled with β-MnO2 nanorod cathode allowed achieving a maximum power density of 524 ± 3 mW m−2 and superior cycling stability as compared to α-MnO2 nanowires and control Pt/C.

Shahbazi Farahani, F., D'Epifanio, A., Majidi, M.r., Placidi, E., Arciprete, F., Mecheri, B. (2020). Tailoring morphology and structure of manganese oxide nanomaterials to enhance oxygen reduction in microbial fuel cells. SYNTHETIC METALS, 268, 116487 [10.1016/j.synthmet.2020.116487].

Tailoring morphology and structure of manganese oxide nanomaterials to enhance oxygen reduction in microbial fuel cells

D'Epifanio A.;Arciprete F.;Mecheri B.
2020-01-01

Abstract

In this study, 1D structures based on α-MnO2 nanowires and β-MnO2 nanorods were fabricated by a single-step hydrothermal synthesis and evaluated as cathode components for microbial fuel cells (MFCs). The role of crystallinity and morphology on electrocatalytic activity was investigated by combining X-ray diffraction, scanning electron microscopy, and X-ray photoelectron spectroscopy with an electrochemical analysis of oxygen reduction reaction at the surface of MnO2-based structures. Among the synthesized composites, β-MnO2 nanorods showed higher ORR activity thanks to the synergy between the rod-like morphology and the nitrogen presence in/on the carbon support which provides a more accessible surface for oxygen adsorption and consequent reduction. MFCs assembled with β-MnO2 nanorod cathode allowed achieving a maximum power density of 524 ± 3 mW m−2 and superior cycling stability as compared to α-MnO2 nanowires and control Pt/C.
2020
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/07 - FONDAMENTI CHIMICI DELLE TECNOLOGIE
English
Con Impact Factor ISI
microbial fuel cell
oxygen reduction reaction
PGM-free electrocatalyst
transition metal oxide
https://www.sciencedirect.com/science/article/abs/pii/S0379677920303507?via=ihub
Shahbazi Farahani, F., D'Epifanio, A., Majidi, M.r., Placidi, E., Arciprete, F., Mecheri, B. (2020). Tailoring morphology and structure of manganese oxide nanomaterials to enhance oxygen reduction in microbial fuel cells. SYNTHETIC METALS, 268, 116487 [10.1016/j.synthmet.2020.116487].
Shahbazi Farahani, F; D'Epifanio, A; Majidi, Mr; Placidi, E; Arciprete, F; Mecheri, B
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/259832
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