Fluorine doped β-Ni(OH)2-Ti3C2 MXene Composite: A Bifunctional Electrode

Abstract

Developing a multifunctional material with high capacity, good electrocatalytic behavior in both OER and HER, and long-term stability is a significant challenge in electrochemical applications. In this work, the fluorine-doped beta nickel hydroxide composite with Ti3C2 Mxene has been synthesised by adding different concentrations of Ti3C2. The F-doped Ni(OH)2-Ti3C2_3% (NT-3@NF) electrode exhibits superior electrocatalytic performance compared to other composite electrodes, with overpotentials of 53 mV for HER and 263 mV for OER at a current density of 10 mA cm-2 in a 1 M KOH alkaline electrolyte medium. The fluorine-doped β-Ni(OH)2 composite with Ti3C2 Mxene (β-Ni(OH)2-Ti3C2_3%), referred to as the NT-3 electrode, achieves a practical specific capacity of 242.16 mAh g-1 at a current density of 1 A g-1, which is 83% of the electrode’s theoretical specific capacity. A hybrid capacitor with a gel electrolyte, fabricated for both bare and composite electrodes, was configured as AC||PVA-KOH||NT-0 and AC||PVA-KOH||NT-3, delivering specific energies of 37.21 and 62.13 Wh kg-1, respectively. The long-term cycle stability of the fabricated supercapacitors has been evaluated over approximately 20,000 cycles at a current density of 1 A g-1. The AC||PVA-KOH||NT-3 supercapacitor delivers a capacitance retention of 71.2% with a coulombic efficiency of 99.62%. A class of 11 V hybrid capacitor prototypes was also fabricated, and their practical viability has been analyzed to ensure high energy density. Thus, the synthesised multifunctional β-Ni(OH)2 and F-doped β-Ni(OH)2-Ti3C2 composite electrode can be a promising candidate for a highly efficient electrode for energy conversion and storage applications.

Supplementary files

Article information

Article type
Paper
Submitted
08 Sep 2025
Accepted
03 Nov 2025
First published
04 Nov 2025

J. Mater. Chem. A, 2025, Accepted Manuscript

Fluorine doped β-Ni(OH)2-Ti3C2 MXene Composite: A Bifunctional Electrode

M. Madeshwaran, M. Aparnasree, K. S. Rajni, S. Shanmugam and U. Mani, J. Mater. Chem. A, 2025, Accepted Manuscript , DOI: 10.1039/D5TA07315D

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