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Cited 2 time in webofscience Cited 2 time in scopus
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Cobalt oxide/cerium oxide heterogeneous interfaces as advanced durable and bifunctional electrocatalysts for robust industrially relevant overall water splitting

Authors
Inamdar, Akbar I.Salunke, Amol S.Seok, Jun HoChavan, Harish S.Shrestha, Nabeen K.Lee, Sang UckCho, SangeunIm, Hyunsik
Issue Date
Nov-2024
Publisher
Royal Society of Chemistry
Keywords
Cell Engineering; Electrochemical Electrodes; Electrolysis; Hydrogen Evolution Reaction; Oxide Films; Oxygen Evolution Reaction; Phosphorus Compounds; Photodissociation; 'current; Bifunctional Electrocatalysts; Cell Voltages; Cerium Oxides; Cobalt Oxides; Electrochemicals; Energy Technologies; Heterogeneous Interfaces; Renewable Resource; Water Splitting; Cerium Oxide
Citation
Journal of Materials Chemistry A, v.12, no.45, pp 31362 - 31374
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
Journal of Materials Chemistry A
Volume
12
Number
45
Start Page
31362
End Page
31374
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/56147
DOI
10.1039/d4ta05895j
ISSN
2050-7488
2050-7496
Abstract
The development of carbon-dioxide-free energy technology using renewable resources has become more urgent due to the continuously increasing global demand for energy. Electrochemical water splitting is a convenient way to produce clean hydrogen fuel. In the present study, we present electrodeposited non-precious mixed-phase Co oxide and Ce oxide heterostructured electrodes as bifunctional electrocatalysts for both oxygen and hydrogen evolution reactions in an alkaline medium. To achieve this, we fabricated various Co1-xCex films (where x = 0.15 and 0.50) by varying the Co/Ce molar ratios of 0.85 : 0.15 and 0.50 : 0.50. The optimized material, referred to as Co0.85Ce0.15, exhibits an ultralow overpotential of 177 mV and 76 mV for the OER and HER, at 20 and -10 mA cm-2, respectively. The overall water splitting (OWS) electrolyzer constructed with optimized electrodes exhibits ultralow cell voltages of 1.56, 2.05, and 2.27 V to achieve current densities of 10, 500, and 1000 mA cm-2 with superbly enhanced electrochemical durability over 40 h at industrially relevant high biases of up to 1000 mA cm-2. Moreover, the OWS further reduced the cell voltage to 1.48 V at an operating temperature of 55 degrees C, whereas the industrially relevant current density of 1000 mA cm-2 was easily achieved at a cell voltage of only 2.07 V. This work provides new insights for the optimization of multi-metal LDHs by engineering intermediate energy barriers for bifunctional catalysts.
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Inamdar, Akbar Ibrahim
College of Advanced Convergence Engineering (Division of System Semiconductor)
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