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A Metal-Organic Framework Derived Porous Cobalt Manganese Oxide Bifunctional Electrocatalyst for Hybrid Na-Air/Seawater Batteries.

Authors :
Abirami M
Hwang SM
Yang J
Senthilkumar ST
Kim J
Go WS
Senthilkumar B
Song HK
Kim Y
Source :
ACS applied materials & interfaces [ACS Appl Mater Interfaces] 2016 Dec 07; Vol. 8 (48), pp. 32778-32787. Date of Electronic Publication: 2016 Nov 23.
Publication Year :
2016

Abstract

Spinel-structured transition metal oxides are promising non-precious-metal electrocatalysts for oxygen electrocatalysis in rechargeable metal-air batteries. We applied porous cobalt manganese oxide (CMO) nanocubes as the cathode electrocatalyst in rechargeable seawater batteries, which are a hybrid-type Na-air battery with an open-structured cathode and a seawater catholyte. The porous CMO nanocubes were synthesized by the pyrolysis of a Prussian blue analogue, Mn <subscript>3</subscript> [Co(CN) <subscript>6</subscript> ] <subscript>2</subscript> ·nH <subscript>2</subscript> O, during air-annealing, which generated numerous pores between the final spinel-type CMO nanoparticles. The porous CMO electrocatalyst improved the redox reactions, such as the oxygen evolution/reduction reactions, at the cathode in the seawater batteries. The battery that used CMO displayed a voltage gap of ∼0.53 V, relatively small compared to that of the batteries employing commercial Pt/C (∼0.64 V) and Ir/C (∼0.73 V) nanoparticles and without any catalyst (∼1.05 V) at the initial cycle. This improved performance was due to the large surface area (catalytically active sites) and the high oxidation states of the randomly distributed Co and Mn cations in the CMO. Using a hard carbon anode, the Na-metal-free seawater battery exhibited a good cycle performance with an average discharge voltage of ∼2.7 V and a discharge capacity of ∼190 mAh g <superscript>-1</superscript> <subscript>hard carbon</subscript> during 100 cycles (energy efficiencies of 74-79%).

Details

Language :
English
ISSN :
1944-8252
Volume :
8
Issue :
48
Database :
MEDLINE
Journal :
ACS applied materials & interfaces
Publication Type :
Academic Journal
Accession number :
27934150
Full Text :
https://doi.org/10.1021/acsami.6b10082