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March 25, 2026Advanced Energy and Sustainability Research2 citationsOpen Access

Aryl Viologen Polymers in High‐Voltage Full‐Organic Batteries

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PPPhilipp PenertLNLisa Sophie NeigeCLChristoph Lorenz

Key Points

  • The research aims to enhance the performance and stability of anion-rocking chair batteries using aryl viologen polymers.
  • Developed linear and crosslinked N-aryl viologen polymers as negative electrodes.
  • Tested these polymers in lithium half-cells to assess electrochemical stability.
  • Constructed full-cells with dimethoxyphenothiazine-based positive electrodes and 2 m LiClO4 electrolyte.
  • Achieved a cell voltage of approximately 1.8 V and a capacity of up to 78 mAh g−1.
  • Demonstrated 71% capacity retention after 100 cycles.
  • Established a metal-free all-organic cell with a specific discharge capacity of up to 88 mAh g−1.

Abstract

Anion‐rocking chair batteries, functioning without any metals, are intriguing candidates as alternative, more sustainable energy storage systems. They can be operated by using two types of p‐type organic electrode‐active materials (OAMs) with low and high redox potentials for the negative and positive electrode, respectively. However, identifying compatible material pairs delivering a potential difference above 1.5 V is challenging. Viologens are promising candidates as low‐potential OAMs, but they usually lack stability when cycled over both redox processes. Herein, we report on linear and crosslinked N ‐aryl viologen polymers with enhanced electrochemical stability over both redox processes in lithium half‐cells. We employ these as negative electrodes in anion‐rocking chair full‐cells with a dimethoxyphenothiazine‐polymer‐based positive electrode, able to undergo two reversible oxidations. The full‐cell, using 2 m LiClO 4 in PC as electrolyte, delivered a voltage of ca. 1.8 V and a capacity of up to 78 mAh g −1 and could be cycled over 100 cycles with a capacity retention of 71%. We further demonstrate a metal‐free all‐organic full‐cell using n Bu 4 NClO 4 as electrolyte salt that delivers an even higher specific discharge capacity of up to 88 mAh g −1 . This work constitutes a step forward toward anion‐rocking chair batteries with attractive cell voltages exceeding 1.5 V.

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Cite This Study

Penert et al. (2026) studied this question.

synapsesocial.com/papers/69c37afeb34aaaeb1a67cf76https://doi.org/10.1002/aesr.202500496
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