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Flexible Antifreeze Zn-Ion Hybrid Supercapacitor Based on Gel Electrolyte with Graphene Electrodes

  • Jianghe Liu
  • , Zeba Khanam
  • , Sultan Ahmed
  • , Ting Wang
  • , Hengtai Wang
  • , Shenhua Song*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

209 Scopus citations

Abstract

Zn-ion energy storage devices employing hydrogel electrolytes are considered as promising candidates for flexible and wearable electronics applications. This is because of their safe nature, low cost, and good mechanical characteristics. However, conventional hydrogel electrolytes face limitation at subzero temperatures. Herein, we report an antifreezing, safe, and nontoxic gel electrolyte based on the poly(vinyl alcohol) (PVA)/Zn/ethylene glycol system. The optimal gel electrolyte membrane exhibits a high ionic conductivity (15.03 mS cm-1 at room temperature) and promising antifreezing performance (9.05 mS cm-1 at -20 °C and 3.53 mS cm-1 at -40 °C). Moreover, the antifreezing gel electrolyte can suppress the growth of Zn dendrites to display a uniform Zn plating/stripping behavior. Also, a flexible antifreezing Zn-ion hybrid supercapacitor fabricated with the optimum antifreezing gel electrolyte membrane exhibits excellent electrochemical properties. The supercapacitor possesses a high specific capacity of 247.7 F g-1 at room temperature under a high working voltage of 2 V. It also displays an outstanding cyclic stability at room temperature. Moreover, the supercapacitor shows an extraordinary electrochemical behavior and cyclic stability over up to 30 000 cycles at -20 °C under a current load of 5 A g-1, demonstrating its outstanding low-temperature electrochemical performance. Besides, the antifreezing supercapacitor device also offers high flexibility under different deformation conditions. Therefore, it is believed that this work provides a simplistic method of realizing the application of flexible antifreezing Zn-ion energy storage devices in a subzero-temperature environment.

Original languageEnglish
Pages (from-to)16454-16468
Number of pages15
JournalACS Applied Materials and Interfaces
Volume13
Issue number14
DOIs
StatePublished - 14 Apr 2021
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2021 American Chemical Society.

Keywords

  • Zn-ion hybrid supercapacitor
  • antifreezing gel electrolyte
  • electrochemical properties
  • graphene electrode
  • low-temperature performance

ASJC Scopus subject areas

  • General Materials Science

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