Abdul Mutlib, Jihyo Lim, Inkyum Kim, Aqsa Ghazal, Hyunwoo Cho, Ahsan Javed, Daewon Kim
Asymmetric supercapacitors (ASCs) possess the potential to deliver high energy and power densities. However, current systems encounter limitations arising from complex charge-storage mechanisms and from interfacial interactions between electrolyte ions and electrode materials. Herein, the electrochemical response of functionalized multiwalled carbon nanotube (FMWCNT)/α-Fe2O3 electrodes in an alkaline KOH electrolyte is investigated. In contrast to pristine FMWCNTs and α-Fe2O3, the FMWCNTs/α-Fe2O3 heterostructure exhibits a higher specific surface area and porosity, enhancing electrolyte diffusion and access to active sites. A high specific capacitance of 1007.3 F/g is achieved at 4 A/g, attributed to an optimized nanostructure for OH- induced Faradaic redox reactions. These experimental enhancements are consistent with first-principles density functional theory (DFT) calculations. In addition, an ASC utilizing the FMWCNTs/α-Fe2O3//Ti3C2Tx-MXene configuration delivers a high energy density of 78.3 Wh/kg, a power density of 4072 W/kg, and excellent cycling stability, retaining 90% of the initial capacitance after 10,000 cycles. These findings establish the FMWCNTs/α-Fe2O3//Ti3C2Tx-MXene configuration as a promising platform for advanced ASCs and provide mechanistic insights into the development of scalable and efficient energy storage devices.