Issue 12, 2024, Issue in Progress

Microwave engineered NiZrO3@GNP as efficient electrode material for energy storage applications

Abstract

Supercapacitors (SCs) have emerged as attractive energy storage devices due to their rapid charge/discharge rates, long cycle life, and high-power density. However, the development of innovative electrode materials to achieve high-performance remains crucial to meet future requirements in supercapacitor technology. In this work, we have explored the potential of a microwave-engineered NiZrO3@GNP composite as a promising electrode material for SCs. A microwave assisted hydrothermal approach was adopted for the fabrication of the NiZrO3@GNP nanocomposite. Structural and morphological investigations showed its structural richness and its chemical compositions. When applied as a SC electrode, this innovative combination exhibits battery-like behaviour with higher specific capacity (577.63 C g−1) with good cyclic stability, and good performance. We have assembled an asymmetric-type two-electrode SC device and analysed its electrochemical features. This NiZrO3@GNP device exhibits the specific capacity of 47 C g−1 with capacitance retention of 70% after 2000 charge–discharge cycles. Further research on optimizing the synthesis process and exploring different device configurations could pave the way for even higher-performance supercapacitors in the future.

Graphical abstract: Microwave engineered NiZrO3@GNP as efficient electrode material for energy storage applications

Article information

Article type
Paper
Submitted
24 Jan 2024
Accepted
02 Mar 2024
First published
11 Mar 2024
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2024,14, 8178-8187

Microwave engineered NiZrO3@GNP as efficient electrode material for energy storage applications

J. J. Benitto, J. J. Vijaya, B. Saravanakumar, H. Al-Lohedan and S. Bellucci, RSC Adv., 2024, 14, 8178 DOI: 10.1039/D4RA00621F

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