Coupling NiMn-Layered Double Hydroxide Nanosheets with NiCo2S4 Arrays as a Heterostructure Catalyst to Accelerate the Urea Oxidation Reactionopen access
- Authors
- Peng, Kai; Bhuvanendran, Narayanamoorthy; Qiao, Fen; Lei, Guangping; Lee, Sae Youn; Su, Huaneng
- Issue Date
- Oct-2023
- Publisher
- American Chemical Society
- Keywords
- NiMn-layered double hydroxide; NiCo2S4 array; heterostructure; urea oxidationreaction; catalytic performance
- Citation
- ACS Applied Nano Materials, v.6, no.19, pp 18318 - 18327
- Pages
- 10
- Indexed
- SCIE
SCOPUS
- Journal Title
- ACS Applied Nano Materials
- Volume
- 6
- Number
- 19
- Start Page
- 18318
- End Page
- 18327
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/25852
- DOI
- 10.1021/acsanm.3c03594
- ISSN
- 2574-0970
2574-0970
- Abstract
- The rational design of advanced transition-metal-based electrocatalysts with a heterostructure is a promising strategy for the promotion of the urea oxidation reaction (UOR) for energy-conservation technologies, but achieving a sufficiently high performance remains a challenge. In this work, we report a dramatic improvement in the UOR performance of a heterostructured electrocatalyst that combines NiMn-layered double hydroxide (LDH) nanosheets with NiCo2S4 arrays via a series of facile hydrothermal fabrication steps. Due to the high-flux electron transfer pathways at the close-contact interface, abundant active sites, and unique threedimensional (3D) architecture, the NiCo2S4@NiMn LDH heterostructure grown on nickel foam exhibits a low potential of 1.37 V at a current density of 100 mA center dot cm(-2) and a low Tafel slope of 43.8 mV center dot dec(-1). More impressively, the proposed electrocatalyst demonstrates robust stability of more than 25 h at a current density of 50 mA center dot cm(-2) with a negligible decrease in activity. In addition, density functional theory calculations reveal that the interface engineering within the heterostructure is beneficial for the adsorption and activation of urea molecules and the improvement of the sluggish UOR dynamics. The dissociation of adsorbed CO(NH2)(2)* into CO* and NH* intermediates on the heterostructured NiMn LDH is also facilitated by electronic coupling with NiCo2S4, resulting in superior UOR performance.
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Collections - College of Engineering > Department of Energy and Materials Engineering > 1. Journal Articles

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