TY - JOUR
T1 - Design and optimization of ZnIn2S4/Zr2C@PANI hybrid materials for improved energy storage and hydrogen evolution performance toward advanced energy applications
AU - Ashraf, Muhammad
AU - Gouadria, Soumaya
AU - Alharbi, Fatma
AU - Iqbal, M. Waqas
AU - Sunny, Muhammad Arslan
AU - Hassan, Haseebul
AU - Ismayilova, N. A.
AU - Alrobei, Hussein
AU - Alawaideh, Yazen M.
AU - Umar, Ehtisham
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/10
Y1 - 2025/10
N2 - Enhancing hydrogen evolution efficiency is crucial for advancing next-generation catalysts. This study presents a simple, cost-effective, and environmentally friendly hydrothermal synthesis method for a ZnIn2S4/Zr2C@PANI, designed to enhance energy storage performance for supercapacitor applications. The polyaniline (PANI) combination significantly improves electrical conductivity, electrochemical performance, and stability. ZnIn2S4, with its basic layered structure, and 2D Zr2C MXene, doped with PANI, were comprehensively characterized using XRD, SEM, FTIR, TGA, and BET analyses to crystal structure, morphology, surface area, and particle size. The electrochemical performance was evaluated in a two-electrode system using PVDF binders and conductive fillers, with characterization performed through CV, GCD, and EIS measurements. The ZnIn2S4/Zr2C@PANI showed superior electrochemical performance, resulting in a specific capacity (Qs) of 2352C/g, capacitance 262.5 F/g, an energy density (Ed) of 64.7 Wh/kg, and power density (Pd) of 1250 W/kg outperforming individual ZnIn2S4 and Zr2C materials. Nyquist plot analysis confirmed the higher conductivity of the PANI-coated composite, which plays a key role in its improved electrochemical efficiency. In this study, combined materials is an applicant for high-performance energy storage devices and hydrogen evolution reaction (HER). The composite can be used in supercapacitors for energy storage and as an efficient catalyst for hydrogen evolution through water splitting.
AB - Enhancing hydrogen evolution efficiency is crucial for advancing next-generation catalysts. This study presents a simple, cost-effective, and environmentally friendly hydrothermal synthesis method for a ZnIn2S4/Zr2C@PANI, designed to enhance energy storage performance for supercapacitor applications. The polyaniline (PANI) combination significantly improves electrical conductivity, electrochemical performance, and stability. ZnIn2S4, with its basic layered structure, and 2D Zr2C MXene, doped with PANI, were comprehensively characterized using XRD, SEM, FTIR, TGA, and BET analyses to crystal structure, morphology, surface area, and particle size. The electrochemical performance was evaluated in a two-electrode system using PVDF binders and conductive fillers, with characterization performed through CV, GCD, and EIS measurements. The ZnIn2S4/Zr2C@PANI showed superior electrochemical performance, resulting in a specific capacity (Qs) of 2352C/g, capacitance 262.5 F/g, an energy density (Ed) of 64.7 Wh/kg, and power density (Pd) of 1250 W/kg outperforming individual ZnIn2S4 and Zr2C materials. Nyquist plot analysis confirmed the higher conductivity of the PANI-coated composite, which plays a key role in its improved electrochemical efficiency. In this study, combined materials is an applicant for high-performance energy storage devices and hydrogen evolution reaction (HER). The composite can be used in supercapacitors for energy storage and as an efficient catalyst for hydrogen evolution through water splitting.
KW - Energy density
KW - Energy storage
KW - Hydrogen evaluation reaction
KW - Power density
KW - Suppercapattery
KW - ZnInS
KW - ZnInS/ZrC(PANI)
KW - ZrC
UR - http://www.scopus.com/inward/record.url?scp=105010917291&partnerID=8YFLogxK
U2 - 10.1016/j.inoche.2025.114987
DO - 10.1016/j.inoche.2025.114987
M3 - Article
AN - SCOPUS:105010917291
SN - 1387-7003
VL - 180
JO - Inorganic Chemistry Communications
JF - Inorganic Chemistry Communications
M1 - 114987
ER -