DocumentCode :
693342
Title :
MnxIr1−xO2/C used as bifunctional electrocatalyst in alkaline medium
Author :
Guobao Chen ; Hongying Yang ; Huamin Zhang ; Hexiang Zhong
Author_Institution :
Sch. of Mater. & Metall., Northeastern Univ., Shenyang, China
Volume :
2
fYear :
2014
fDate :
19-21 Aug. 2014
Firstpage :
440
Lastpage :
444
Abstract :
There is a growing interest in oxygen electrochemistry as conversions between O2 and H2O play an important role in a variety of renewable energy technologies. In this paper, bifunctional electrocatalysts of the general formula MnxIr1-xO2/C were prepared using a pyrolysis method. Their physical characteristics were examined via transmission electron microscopy, and the electrochemical properties were examined via cyclic voltammetry and linear sweep voltammetry measurements in 1M KOH solution. Experimental results show that with the content of iridium increasing in MnxIr1-xO2/C, the oxygen reduction reaction (ORR) activity first increases and then decreases. Mn0.75Ir0.25O2/C has the highest ORR activity and its half-wave potential obtains -0.071V (relative to Hg/HgO electrode). It is worth noting that doping the MnO2/C nanoparticles with only a small amount of iridium can considerably improve the oxygen evolution reaction (OER) activity of MnO2 in the alkaline medium. The oxygen evolution current density at 0.75 V vs. Hg/HgO of Mn0.75Ir0.25O2/C was nearly 4.31 times as that of MnO2/C. The results offer an important direction for the development of bifunctional oxygen catalysts in alkaline medium.
Keywords :
carbon; catalysts; chemical energy conversion; current density; electrochemical electrodes; electrochemistry; iridium compounds; manganese compounds; nanoparticles; pyrolysis; reduction (chemical); renewable energy sources; transmission electron microscopy; voltammetry (chemical analysis); MnxIr1-xO2-C; OER activity; ORR activity; alkaline medium; bifunctional electrocatalyst; bifunctional oxygen catalysts; cyclic voltammetry; electrochemical properties; electrode; half-wave potential; linear sweep voltammetry measurements; nanoparticles; oxygen electrochemistry; oxygen evolution current density; oxygen evolution reaction; oxygen reduction reaction; physical characteristics; pyrolysis method; renewable energy technology; transmission electron microscopy; voltage -0.071 V; voltage 0.75 V; Current density; Electric potential; Electrodes; Manganese; Mercury (metals); Oxygen; Alkaline medium; Bifunctional oxygen catalysts; MnxIr1−xO2/C; Oxygen evolution reaction; Oxygen reduction reaction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Materials for Renewable Energy and Environment (ICMREE), 2013 International Conference on
Conference_Location :
Chengdu
Print_ISBN :
978-1-4799-3335-8
Type :
conf
DOI :
10.1109/ICMREE.2013.6893707
Filename :
6893707
Link To Document :
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