Youngho Jin, Geongil Kim, Honggyu Seong, Joon Ha Moon, Hyunbhin Kim, June Young Jang, Deukhyeon Nam, Seungwoo Hong, Jaewon Choi
Transition metal sulfides are promising electrode materials for next-generation rechargeable batteries owing to their high theoretical capacities and multiple redox-active sites. However, their electrochemical performance is often limited by sluggish ion diffusion and severe structural degradation during cycling. Herein, we report a colloidal-synthesized CuInS2@CNT as a structurally resilient and kinetically favorable electrode for both sodium-ion and aqueous copper-ion batteries. When used as anode materials for SIBs, CuInS2@CNT delivered a high reversible capacity of 339.1 mAhg-1 at a current density of 10.0 Ag-1 after 1000 cycle. Comprehensive electrochemical tests, including cyclic voltammetry, the galvanostatic intermittent titration technique, and in-situ electrochemical impedance spectroscopy combined with the distribution of relaxation times, revealed fast kinetics during sodiation and desodiation. Moreover, when evaluated as cathode materials for aqueous copper-ion batteries, CuInS2@CNT maintained 243.1 mAhg-1 at 5.0 Ag-1 after 2000 cycles. This dual-system investigation provides design principles for ternary metal sulfide/carbon composites capable of maintaining reversible redox kinetics across different ion-storage environments.