Jiang Wei, Cui Xin, Yang Xiaoyang, Liu Zeyi, Yuan Zhenqiang, Qiu Haoyu, Wan Jiafeng, Ma Fangwei
National Center for International Research on Catalytic Technology, School of Chemistry and Material Science, Heilongjiang University, Harbin 150080, China.
School of Chemistry and Material Science, Heilongjiang University, Harbin 150080, China.
ACS Appl Mater Interfaces. 2025 Sep 17;17(37):52542-52555. doi: 10.1021/acsami.5c15176. Epub 2025 Sep 4.
Bimetallic sulfide is an outstanding pseudocapacitive material with high theoretical specific capacitance and good electronic conductivity. Herein, nickel-cobalt bimetallic sulfide (CoNiS/NiS) nanoframes composed of thin sheets are synthesized from Ni-Co Prussian blue analogues (NiCo-PBA) by an ion exchange method. The influence of sodium sulfide solution concentration on the morphology and supercapacitor (SC) performances of sulfides is systematically investigated. Benefiting from the unique nanoframe structure composed of nanosheet morphology and bimetallic active sites, the CoNiS/NiS-30 electrode displays a high specific capacity of 1243 C g at 1 A g and a high capacity retention rate of 75% when increasing the current density by 20-fold. It is worth emphasizing that the rate performance was improved by 68% compared with that of NiS/NiS before ion exchange. The assembled asymmetric supercapacitor (ASC) exhibits an energy density of 48.6 Wh kg at a power density of 963 W kg and good cycling stability, with a capacity retention rate of 81% after 5000 cycles. Moreover, the all-solid-state supercapacitor (SASC) has an energy density of 46.7 Wh kg at a power density of 1081 W kg, and two SASCs connected in series can power an LED for exceeding 4 min. This study offers an innovative strategy to develop high-performance bimetallic sulfides for asymmetric supercapacitors.