Heterointerface-engineered 2D/2D layered heterojunction with electronic coupling for energy storage
- Authors
- Savariraj, Antonysamy Dennyson; Marotrao, Kale Amol; Sivakumar, Periyasamy; Manikandan, Ramu; Gangadhar, Lekshmi; Kim, Byung Chul; Jung, Hyun
- Issue Date
- Feb-2025
- Publisher
- ELSEVIER SCIENCE SA
- Keywords
- Nucleation mechanism; Cathodic electrodeposition; Interfacial electronic coupling; Heterojunction; Binder-free architectures
- Citation
- Chemical Engineering Journal, v.505, pp 1 - 15
- Pages
- 15
- Indexed
- SCIE
SCOPUS
- Journal Title
- Chemical Engineering Journal
- Volume
- 505
- Start Page
- 1
- End Page
- 15
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/57582
- DOI
- 10.1016/j.cej.2025.159702
- ISSN
- 1385-8947
1873-3212
- Abstract
- Co(OH)2 layers were grown on nickel foam by an instantaneous nucleation mechanism regulated by cathodic electrodeposition. Treating Co(OH)2 layers as the template, Ni(OH)2 layers were cladded onto to form Co(OH)2/ Ni(OH)2 heterojunction. The resultant self-supported binder-free architectures with abundant active sites and reduced aggregation facilitate faradaic redox reactions and shorten electron transport distance. The heterointerface-engineered Co(OH)2/Ni(OH)2 architecture with interfacial electronic coupling as electrodes highlighted its merits by delivering an areal capacity of 1965 mC cm- 2 at 1 mA cm- 2, a high specific capacity of 444 C g- 1, and a specific capacitance of 889 F g- 1 at 1 A g- 1. Moreover, the electrode demonstrated its chemical stability and structural endurance, with an 89.5 % retention of specific capacity at the 5000 th cycle. Additionally, the hybrid device assembled with Co(OH)2/Ni(OH)2//activated carbon composition delivered a specific capacity of 181 C g- 1 at 1 A g- 1, a maximum specific energy of 53.1 Wh kg- 1 at 1 A g- 1, and an appreciable specific power of 16.56 kW kg- 1 at 20 A g- 1. The proposed strategy takes advantage of yielding replicated twodimensional sheets (2D) with interfacial electronic coupling, ample active sites, and high synergy between the two layers, which help in designing high-energy electrochemical storage devices.
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- Appears in
Collections - College of Engineering > Department of Energy and Materials Engineering > 1. Journal Articles
- College of Natural Science > Department of Chemistry > 1. Journal Articles

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