Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/117409
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Type: Journal article
Title: Pseudocapacitive behavior of the Fe₂O₃ anode and its contribution to high reversible capacity in lithium ion batteries
Other Titles: Pseudocapacitive behavior of the Fe(2)O(3) anode and its contribution to high reversible capacity in lithium ion batteries
Author: Xiang, Y.
Yang, Z.
Wang, S.
Hossain, M.
Yu, J.
Kumar, N.
Yamauchi, Y.
Citation: Nanoscale, 2018; 10(37):18010-18018
Publisher: Royal Society of Chemistry
Issue Date: 2018
ISSN: 2040-3364
2040-3372
Statement of
Responsibility: 
Yimo Xiang, Zhigao Yang, Shengping Wang, Md. Shahriar A. Hossain, Jingxian Yu, Nanjundan Ashok Kumar and Yusuke Yamauchi
Abstract: Pseudocapacitance, which is the storage of charge based on continuous and fast reversible redox reactions at the surface of electrode materials, is commonly observed for electrodes in lithium ion batteries, especially for transition metal oxide anodes. In this report, bare Fe2O3 of granular morphology (∼30 nm in diameter) with high purity and decent crystallinity as well as recommendable electrochemical performances is fabricated hydrothermally and employed as the subject to clarify pseudocapacitive behavior in transition metal oxide anodes. Electrochemical technologies such as galvanostatic charging/discharging, differential capacity analysis (dQ/dV) and the power law relationship (i = aνb), which can distinguish pseudocapacitive behaviors of an electrode reaction were employed to analyze the electrodes. Reversible capacities of ∼120 mA h g-1 (0.117 F cm-2) for Fe2O3 were found within particular electrochemical windows (2.3-3.0 V, 0.3-0.8 V for discharging and 2.2-3.0 V, 0.3-1.3 V for charging). A new direction of optimizing the capacities, rate and cycling performances for lithium ion batteries is pointed out with connections between the pseudocapacitive behavior and morphologies of surfaces as well as structures of the electrodes.
Rights: This journal is © The Royal Society of Chemistry 2018
DOI: 10.1039/c8nr04871a
Grant ID: http://purl.org/au-research/grants/arc/FT150100479
Published version: http://dx.doi.org/10.1039/c8nr04871a
Appears in Collections:Aurora harvest 3
Physics publications

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