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December 11, 2025ACS Applied Materials & Interfaces7 citations

High-Performance n-Type Conducting Polymer-Based Supercapacitors with Enhanced Capacitance and Stability via Redox Additives

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WXWei XiongHTHaoran TangXZXiaojian Zhang

Key Points

  • This research aims to enhance the performance of n-Type conducting polymer supercapacitors using redox-active additives.
  • Introduced hydroquinone as a redox-active electrolyte additive to poly(benzodifurandione)-based supercapacitors.
  • Measured specific capacitance and stability over 50,000 cycles with varying concentrations of hydroquinone.
  • Assessed performance under high power density conditions.
  • Specific capacitance increased from 33 to about 60 F g^-1 with 20 mM hydroquinone.
  • Over 93% capacity retention after 50,000 cycles was achieved.
  • The supercapacitor delivered 5.6 Wh kg^-1 of energy density at a power density of 50,000 W kg^-1.

Abstract

Conducting polymers, as a type of pseudocapacitive material, have garnered significant attention in the development of all-organic supercapacitors due to their superior electrochemical properties. While extensive research has been conducted on p-type conducting polymers, n-type analogues continue to face challenges such as poor stability and narrow electrochemical windows. This study presents a method to enhance n-type conducting polymer poly(benzodifurandione) (PBFDO)-based supercapacitors by introducing hydroquinone (HQ) as a redox-active electrolyte additive. With 20 mM HQ, an increase in specific capacitance from 33 to approximately 60 F g-1 is observed, and the device retains over 93% capacity after 50,000 cycles. Experimental results demonstrate that HQ facilitates reversible doping/dedoping processes, thereby improving ion diffusion and polymer stability. Remarkably, even under an ultrahigh power density of 50,000 W kg-1, the device still delivers 5.6 Wh kg-1 of energy density, demonstrating exceptional high-power endurance. Similarly, other hydroquinone derivatives also improve rate capability and long-term stability, thereby mechanistically confirming the universality of this strategy for improving the performance of all-organic energy storage devices.

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Cite This Study

Xiong et al. (2025) studied this question.

synapsesocial.com/papers/69401b172d562116f28f734ahttps://doi.org/10.1021/acsami.5c14387
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