High-Voltage Redox Mediator of an Organic Electrolyte for Supercapacitors by Lewis Base Electrocatalysis.

ACS Appl Mater Interfaces

CAS Key Laboratory of Carbon Materials, Institute of Coal Chemistry, Chinese Academy of Sciences, Taiyuan 030001, Shanxi, China.

Published: June 2022

AI Article Synopsis

  • - Redox electrolytes are gaining attention for supercapacitors (SCs) due to their ability to provide high capacitance and long cycle stability, but their energy density is limited by narrow electrochemical windows caused by side reactions.
  • - To enhance performance, the study introduces tetrachloridehydroquinone (TCHQ) as a redox mediator in organic electrolytes, allowing a broader electrochemical window up to 2.7 V through a specific dehydrogenation reaction catalyzed by N-doped activated carbon.
  • - The research highlights the effectiveness of using TCHQ and N-doped activated carbon to improve energy density in SCs, offering a new approach for designing redox mediators and

Article Abstract

Redox electrolytes for supercapacitors (SCs) have recently sparked widespread interest. Due to the redox reactions within electrolytes, they can achieve high capacitance and long cycle stability. However, the energy density of SCs with redox electrolytes is limited by the narrow applied electrochemical window due to the irreversible side reaction of redox mediators at high potential. To overcome this issue, a redox mediator with a high redox potential, tetrachloridehydroquinone (TCHQ), is added to organic electrolytes to obtain a broad electrochemical window. TCHQ is designed to undergo a dehydrogenation reaction catalyzed by N-doped activated carbon to provide capacitance. The pyrrole N atoms have the highest electrocatalytic activity based on the theoretical calculation of reaction overpotential with predicted reaction pathways due to their Lewis basicity. Benefitting from that, TCHQ shows promising reversibility with a larger electrochemical window (up to 2.7 V). As a result, a higher energy density is obtained when compared to commercial SCs. This study proposes a strategy for designing redox mediators and interfaces of SCs with high energy density and a calculation method of dehydrogenation reaction electrocatalysis.

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Source
http://dx.doi.org/10.1021/acsami.2c05645DOI Listing

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