Unveiling the redox electrochemistry of 1D, urchin-like vanadium sulfide electrodes for high-performance hybrid supercapacitorsopen access
- Authors
- Karuppasamy, K.; Vikraman, Dhanasekaran; Hussain, Sajjad; Thirumalraj, Balamurugan; Santhoshkumar, P.; Parangusan, Hemalatha; Park, Hyun-Chang; Jung, Jongwan; Kim, Hyun-Seok
- Issue Date
- Apr-2023
- Publisher
- ELSEVIER
- Keywords
- Patronite; Redox electrochemistry; UrchinVS4; 1D material; Mesoporous
- Citation
- Journal of Energy Chemistry, v.79, pp 569 - 580
- Pages
- 12
- Indexed
- SCIE
SCOPUS
- Journal Title
- Journal of Energy Chemistry
- Volume
- 79
- Start Page
- 569
- End Page
- 580
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/21292
- DOI
- 10.1016/j.jechem.2023.01.005
- ISSN
- 2095-4956
2096-885X
- Abstract
- Exploring novel versatile electrode materials with outstanding electrochemical performance is the key to the development of advanced energy conversion and storage devices. In this work, we aim to construct new-fangled one-dimensional (1D) quasi-layered patronite vanadium tetrasulfide (VS4) nanostructures by using different sulfur sources, namely thiourea, thioacetamide, and L-cysteine through an ethyleneaminetetraacetic-acid (EDTA)-mediated solvothermal process. The as-prepared VS4 exhibits sev-eral unique morphologies such as urchin, fluffy nanoflower, and polyhedron with appropriate surface areas. Among the prepared nanostructures, the VS4-1@NF nanostructure exhibited excellent electro-chemical properties in 6 M KOH solution, and we explored its redox electrochemistry in detail. The as-prepared VS4-1@NF electrode exhibited battery-type redox characteristics with the highest capacity of 280 C g-1 in a three-electrode assembly. Moreover, it offered a capacity of 123 F g-1 in a hybrid two-electrode set-up at 1 A g-1 with the highest specific energy and specific power of 38.5 W h kg-1 and 750 W kg-1, respectively. Furthermore, to ensure the practical applicability and real-world performance of the prepared hybrid AC@NF//VS4-1@NF cell, we performed a cycling stability test with more than 5,000 galvanostatic charge-discharge cycles at 2 A g-1, and the cell retained around 84.7% of its capacitance even after 5,000 cycles with a CE of 96.1%.(c) 2023 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.
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Collections - College of Engineering > Department of Electronics and Electrical Engineering > 1. Journal Articles

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