Muhammad Norhaffis Mustafa, Muhammad Amirul Aizat Mohd Abdah, Norshahirah M. Saidi, Arshid Numan, Yusran Sulaiman, Rashmi Walvekar, Mohammad Khalid
ABSTRACT Electrochromic materials that simultaneously enable optical modulation and charge storage offer a promising route toward multifunctional energy systems. Herein, we report a scalable synthesis of a nickel cobalt phosphate–MXene (NCP/Ti 3 C 2 ) composite engineered to couple fast ion transport with structural robustness. Using microwave‐assisted deposition followed by spin coating, we constructed a conductive Ti 3 C 2 network that intimately overlays the NCP matrix, forming an architecture that overcomes the transport limitations and instability typically observed in MXene–phosphate hybrids. The optimized NCP/Ti 3 C 2 film delivered a high coloration efficiency (~140 cm 2 /C) and retained over 75% of its optical contrast after 1000 switching cycles. It further exhibits an exceptional specific capacitance (~2300 F/g at 1 mV/s), reflecting markedly enhanced charge‐storage kinetics. Assembled into an asymmetric electrochromic supercapacitor with activated carbon, the device achieved an energy density of ~15 Wh/kg at a power density of ~1600 W/kg and maintained ~85% capacitance retention over 5000 cycles. These combined optical and electrochemical performances position the NCP/Ti 3 C 2 //AC system as a compelling platform for next‐generation wearable and multifunctional energy‐storage technologies.