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Cited 6 time in webofscience Cited 6 time in scopus
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Superb Bifunctional Water Electrolysis Activities of Carbon Nanotube-Decorated Lanthanum Hydroxide Nanocompositesopen access

Authors
Sekar, SankarPark, SeoyeonJung, JiwoonLee, Sejoon
Issue Date
Oct-2023
Publisher
John Wiley & Sons Ltd
Keywords
Electrocatalysts; Electrolysis; Hydrogen Production; Lanthanum Compounds; Nanocomposites; Oxygen; Potassium Hydroxide; Rare Earths; Bi-functional; Carbon Allotropes; Electrocatalytic; High-fidelity; Nanocomposite Systems; Overpotential; Performance; Tafel Slopes; Water Electrolysis; Water Splitting; Carbon Nanotubes
Citation
International Journal of Energy Research, v.2023, pp 1 - 13
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
International Journal of Energy Research
Volume
2023
Start Page
1
End Page
13
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/25592
DOI
10.1155/2023/6685726
ISSN
0363-907X
1099-114X
Abstract
For highly efficient hydrogen production from electrocatalytic water electrolysis, developing a high-fidelity electrocatalyst is pivotal. Herein, we demonstrated the excellent water-splitting performances of the carbon allotrope-decorated rare earth oxide nanocomposite system, which was composed of lanthanum hydroxide (La(OH)3) and carbon nanotube (CNT). The nanocomposites of CNT-La(OH)3 were fabricated via facile ultrasonication using La(OH)3 nanoparticles and CNT nanofibers, and they exhibited excellent bifunctional water-splitting activities. For the hydrogen evolution reaction, CNT-La(OH)3 showed low values of both overpotential (150 mV) and Tafel slope (113 mV/dec) in 1 M KOH at -10 mA/cm2. Additionally, for the oxygen evolution reaction, CNT-La(OH)3 also displayed small values for their overpotential (310 mV) as well as the Tafel slope (39 mV/dec). Furthermore, both bifunctional hydrogen- and oxygen-evolution reactions were confirmed to be stable in chronopotentiometric tests. From the material characterization and the electrochemical characterization, such excellent bifunctional water electrolysis performances were ascribed to the synergetic effects of hybridization of La(OH)3 (i.e., a large number of electrochemically active sites of 304 cm2) and CNT (i.e., high charge transport conductivity). The results specify that the present CNT-La(OH)3 nanocomposite system possesses ample aptitude as a superior electrocatalyst for next-generation hydrogen production technology. © 2023 Sankar Sekar et al.
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