Citation: Shouhao WAN, Yihang SHEN, Xiang GAO, Yang CHEN, Jiaqi LI, Cuie ZHAO. Two-dimensional MOFs/MXene composite for high-performance transparent zinc-ion hybrid supercapacitors[J]. Chinese Journal of Inorganic Chemistry, ;2026, 42(8): 1582-1592. doi: 10.11862/CJIC.20260077 shu

Two-dimensional MOFs/MXene composite for high-performance transparent zinc-ion hybrid supercapacitors

  • Corresponding author: Cuie ZHAO, iamcezhao@njupt.edu.cn
  • Received Date: 9 March 2026
    Revised Date: 9 June 2026

Figures(6)

  • A facile electrostatic self-assembly strategy for the construction of a two-dimensional Cu-TCPP/MXene composite (Cu-TCPP=tetracarboxyphenyl porphyrin copper) was proposed, featuring a well-integrated heterogeneous interface with highly conductive networks and porous ion transport channels. This unique architecture effectively accelerates electrolyte ion diffusion and charge transfer. Under optimized ratio, the Cu-TCPP/MXene electrode exhibited high optical transmittance exceeding 60%, and the assembled transparent supercapacitor delivered an outstanding areal capacitance of 7.48 mF·cm-2. Furthermore, an asymmetric zinc-ion hybrid supercapacitor (ZIHSC) was constructed by employing the Cu-TCPP/MXene as the cathode and electrochemically deposited zinc as the anode. The ZIHSC device achieved a wide voltage window of 0-1.2 V, a high transmittance of 58.9%, an outstanding areal capacitance of 10.5 mF·cm-2, and an energy density of 2.1 μWh·cm-2.
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