Exploring the electrochemical performance of niobium phosphate electrode for supercapacitor applicationopen access
- Authors
- Amate, Rutuja U.; Morankar, Pritam J.; Teli, Aviraj M.; Chavan, Ganesh T.; Beknalkar, Sonali A.; Ahir, Namita A.; Jeon, Chan-Wook
- Issue Date
- Oct-2023
- Publisher
- Elsevier
- Keywords
- Niobium phosphate; Hydrothermal; Supercapacitor; Charge storage kinetics; Stability
- Citation
- Surfaces and Interfaces, v.41, pp 1 - 13
- Pages
- 13
- Indexed
- SCIE
SCOPUS
- Journal Title
- Surfaces and Interfaces
- Volume
- 41
- Start Page
- 1
- End Page
- 13
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/21074
- DOI
- 10.1016/j.surfin.2023.103265
- ISSN
- 2468-0230
2468-0230
- Abstract
- This study assessed the suitability of niobium phosphate (NbPO5) thin films for energy storage applications. The NbPO5 thin films were synthesized using a hydrothermal technique for various deposition times. The structural, morphological, elemental, and electrochemical characteristics of the NbPO5 thin films were analyzed. The NbPO5 thin films had an orthorhombic crystal structure with a unique surface morphology consisting of tetragonal -shaped micro-rods surrounded by nanostructured spheres. X-ray photoelectron spectroscopy and energy dispersive spectroscopy confirmed the NbPO5 composition. The micro-rods and nanospheres morphology of NbPO5 samples at 6 h deposition time (NbP-6) exhibited a high areal capacitance (CA) of 3542.4 mF cm-2 at a current density of 10 mA cm-2. The excellent energy storage performance of the NbP-6 sample was attributed to the high diffusion coefficient, enhanced charge transfer, and carrier mobility. Moreover, the NbP-6 sample displayed excellent long-term cycling stability, maintaining 85.4% of its total capacitance and 98.7% of coulombic efficiency over 10,000 consecutive galvanostatic charge-discharge cycles. The present study suggests that an NbPO5 electrode is a promising candidate for supercapacitor applications owing to the synergistic effects of niobium and phosphate.
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Collections - College of Engineering > Department of Electronics and Electrical Engineering > 1. Journal Articles

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