AI Article Synopsis

  • Redox-enhanced electrochemical capacitors (redox-ECs) outperform traditional capacitors due to the use of redox-active electrolytes, leading to higher energy density and more stable power output.
  • This study focuses on the electrochemical processes of a specific dual redox system involving pentyl viologen/bromide and mesoporous carbon electrodes (CMK-8) to enhance device performance.
  • Key findings suggest that optimal charging conditions (1.5 V voltage, 0.5 A/g rate) maximize energy delivery by enabling complete reduction of viologen molecules and achieving an effective balance between diffusion and adsorption processes.

Article Abstract

Compared to traditional electric double-layer capacitors, redox-enhanced electrochemical capacitors (redox-ECs) show increased energy density and steadier power output thanks to the use of redox-active electrolytes. The aim of this study is to understand the electrochemical mechanisms of the aqueous pentyl viologen/bromide dual redox system at the interface of an ordered mesoporous carbon (CMK-8) and improve the device performance. Cells with CMK-8 carbon electrodes were investigated in several configurations using different charging rates and potential windows. The pentyl viologen electrochemistry shows a mixed behavior between solution-based diffusion and adsorption phenomena, with the reversible formation of an adsorbed layer. The extension of the voltage window allows for full reduction of the viologen molecules during charge and a consequent increase in the specific discharge energy delivered by the cell. Investigation of the mechanism indicates that a 1.5 V charging voltage with a 0.5 A g charging rate and fast discharge rate produces the best overall performance.

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Source
http://dx.doi.org/10.1021/acsami.1c13378DOI Listing

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