Issue 28, 2015

Control of manganese dioxide crystallographic structure in the redox reaction between graphene and permanganate ions and their electrochemical performance

Abstract

MnO2 with α + γ-, δ-, and α-phases were synthesized by using graphene as sacrificial template in a proposed KMnO4–graphene–H2SO4 reaction system. The as-prepared products were characterized with X-ray diffraction technique, Raman spectroscopy, and transmission electron microscopy. The structural analysis reveals that the cation concentration, i.e. H+ and K+, has a profound effect on both the crystallographic structures and morphologies of the final products. The relatively higher K+ concentration but lower H+ concentration facilitates the formation of δ-phased MnO2 with a petal-like structure, and the lower concentration of both K+ and H+ cations is more conducive to the formation of a mixed phase of (α + γ) MnO2. A further increase in the concentration of H+, forming the α-phased MnO2 nanorods is preferred. The electrochemical properties for supercapacitors indicate that the electrochemical performances of MnO2 strongly depend on their crystallographic structures, and they present a Faradaic reactivity sequence of δ- > α- > α + γ-MnO2.

Graphical abstract: Control of manganese dioxide crystallographic structure in the redox reaction between graphene and permanganate ions and their electrochemical performance

Supplementary files

Article information

Article type
Paper
Submitted
25 Jan 2015
Accepted
18 Feb 2015
First published
18 Feb 2015

RSC Adv., 2015,5, 21978-21987

Author version available

Control of manganese dioxide crystallographic structure in the redox reaction between graphene and permanganate ions and their electrochemical performance

C. Ji, H. Ren and S. Yang, RSC Adv., 2015, 5, 21978 DOI: 10.1039/C5RA01455G

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