Detailed Information

Cited 0 time in webofscience Cited 1 time in scopus
Metadata Downloads

Spindle-shape ferric oxyhydroxides with nano-sized grains for efficient oxygen evolution reaction and supercapacitors

Authors
Lee, SuokKim, Min-CheolJang, A-RangSohn, Jung InnPark, Jong BeaLee, Young-Woo
Issue Date
1-Mar-2022
Publisher
Elsevier BV
Keywords
Ferric oxyhydroxide; Carbon fiber; Faradaic redox; Supercapacitor; Oxygen evolution reaction
Citation
Applied Surface Science, v.577, no.0, pp 1 - 7
Pages
7
Journal Title
Applied Surface Science
Volume
577
Number
0
Start Page
1
End Page
7
URI
https://scholarworks.bwise.kr/sch/handle/2021.sw.sch/20192
DOI
10.1016/j.apsusc.2021.151975
ISSN
0169-4332
1873-5584
Abstract
The rational design and development of novel electrode materials with a unique hierarchical nanostructure is crucial for improving their electrochemical activities, charge transfer kinetics, energy efficiency, and energy-storing ability in energy conversion and storage devices. In this study, we synthesized spindle-shaped ferric oxyhydroxide nanoparticles directly grown on carbon cloth (spindle-FON/CC) by a facile and straightforward hydrolysis method. This material is a promising candidate for the fabrication of efficient electrodes used in supercapacitors (SCs) and electrocatalytic cells for the oxygen evolution reaction (OER). The as-prepared spindle-FON/CC exhibits unique structural features with nano-sized grains and pores that provide large electrolyte contact areas (electrochemically active sites) and favorable ion diffusion pathways. These structural properties lead to efficient capacitive behavior and electrochemical catalytic activity. The as-prepared spindle-FON/CC electrode showed a high specific capacitance of 612.5 mF cm(-2) and outstanding cycling stability (95.7 % capacitance retention after 4,000 cycles). When used as an OER electrocatalyst, the spindle-FON/CC exhibited improved electrocatalytic activity with a low overpotential of 216 mV at a current density of 10 mA cm(-2) and a small Tafel slope of 73.4 mV dec(-1).
Files in This Item
There are no files associated with this item.
Appears in
Collections
SCH Media Labs > Department of Energy Systems Engineering > 1. Journal Articles

qrcode

Items in ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.

Related Researcher

Researcher Lee, YOUNG WOO photo

Lee, YOUNG WOO
SCH Media Labs (에너지공학과)
Read more

Altmetrics

Total Views & Downloads

BROWSE