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◆ Journal of Energy Storage2026-04-14· Materials science

Reduced self-discharge of supercapacitors using piezoelectric-material-based composite hydrogel electrolytes

Chengyan Zhao, Maosheng Wu, Qinghang Zeng, Chang Zhu, Jiyin Zhu, Xiaodan Cao, Dong Yang, Qing Qu, Jinyang Zhang, Xin Zheng, Bowen Qi, Kailiang Ren, Xianmao Lu

原始摘要(英文原文)· Original abstract
Supercapacitors based on hydrogel electrolytes have attracted widespread attention owing to their unique properties. However, their practical application in long-term energy storage is severely constrained by self-discharge behavior, which leads to rapid energy loss. Here we propose a piezoelectric effect to suppress self-discharge in supercapacitors by embedding piezoelectric Pb 0.988 (Zr 0.52 Ti 0.48 ) 0.976 Nb 0.024 O 3 (PZT) nanoparticles into hydrogel electrolyte, generating a persistent local electric field that modulates ion diffusion. Self-discharge tests show that, compared with the blank hydrogel electrolyte, the supercapacitor with PZT composite hydrogel electrolyte delivers an OC V retention that is 101.8% higher (1.11 vs 0.55 V) and a 69.7% lower leakage current (1.90 vs 6.27 μA). Mechanistic analysis indicates that the reduced self-discharge can be attributed to the structure of the reverse diode formed by the piezoelectric enhanced local electric field and the improvement of the electrode/electrolyte interface. Therefore, the self-discharge process attributed to diffusion-controlled faradaic reactions can be suppressed. Furthermore, the universality of this approach was validated using multi-walled carbon nanotubes (MWCNT), activated carbon (AC), and MXene as electrode materials, confirming its broad applicability in diverse supercapacitor systems.
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