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Electrochemical hydrogen storage performance of hierarchical Co metal flower-like microspheres

Authors
Lee, Dong HeonKang, MyunggooPaek, Seung-MinJung, Hyun
Issue Date
1-Nov-2016
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
Cobalt metal; Hierarchical flower-like architecture; Electrochemical hydrogen storage; Discharge capacity
Citation
ELECTROCHIMICA ACTA, v.217, pp 132 - 138
Pages
7
Indexed
SCI
SCIE
SCOPUS
Journal Title
ELECTROCHIMICA ACTA
Volume
217
Start Page
132
End Page
138
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/14961
DOI
10.1016/j.electacta.2016.09.021
ISSN
0013-4686
1873-3859
Abstract
Hierarchical cobalt metal flower-like microsphere (Co-FM) was synthesized by a facile hydrothermal process, and its electrochemical hydrogen storage performance was investigated. The Co-FM was generated by the reduction of beta cobalt hydroxide [beta-Co(OH)(2)] platelets in the presence of a mild reducing agent without the use of any template or surfactant. The obtained sample was characterized by X-ray diffraction (XRD), field emission scanning electron microscopy (FE-SEM), high-resolution transmission electron microscopy (HR-TEM), and energy dispersive spectrometry (EDS). The XRD analysis reveals that this sample has a pure hexagonal close-packed (hcp) structure. The FE-SEM and HR-TEM observations indicate that the synthesized particles are flower-like microspheres with an average diameter of similar to 1.5 mu m, composed of individual Co metal platelets. The electrochemical hydrogen storage performance was investigated as the negative electrode for nickel-metal hydride (Ni-MH) battery in aqueous KOH solution. The electrochemical measurements demonstrated that this material showed better reversibility, higher hydrogen storage capacity, and higher rate dischargeability than the commercial Co metal powder with similar particle size (similar to 2 mu m) under atmospheric temperature and pressure. Its maximum discharge capacity was similar to 360 mA h g(-1) and remained 300 mA h g(-1) even after 100 cycles, and the capacity retention rate was similar to 83%. This significant electrochemical hydrogen storage performance can be attributed to its hierarchical architecture, which leads to increasing the surface area, reducing the diffusion pathway, and buffering the volume change during cycling. (C) 2016 Elsevier Ltd. All rights reserved.
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