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June 1, 2026Current Opinion in Electrochemistry0 citationsOpen Access

Sequential Paired Electrolysis: Challenges and Recent Developments

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VOValtteri OksanenTWTom Wirtanen

Key Points

  • The aim is to address key challenges in sequential paired electrolysis and propose solutions based on recent findings.
  • Discussed three main challenges in sequential paired electrolysis: electron mismatch, mass transport, and low intermediate concentration.
  • Reviewed alternative cell designs like flow-microreactors and interdigitated electrodes.
  • Highlighted strategies such as rapid alternating polarity and use of redox mediators to improve yields.
  • Identified electron mismatch limits efficiency, requiring additional counter reactions.
  • Suggested alternative cell designs can enhance mass transport and reaction rates.
  • Noted that redox mediators can significantly improve the space-time yields.

Abstract

Sequential paired electrolysis, where substrate is converted to intermediate at one electrode and into final product at opposite electrode, is a powerful tool for (redox-neutral) single-cell cascade reactions. In this opinion, we highlight three key challenges for sequential transformations and discuss practical solutions for overcoming these obstacles based on the recent literature. First, we describe how electron mismatch between half-reactions may limit theoretical current efficiencies and require the utilization of additional counter reactions. Second, we examine how interelectrode mass transport of reactive intermediates can hinder both reaction rates and yields, especially for short-lived radical species. Flow-microreactors or interdigitated electrodes are discussed as alternative cell designs to improve mass transfer, whereas rapid alternating polarity can be used to circumvent this requirement altogether. Third, we address how low intermediate concentration and its depletion at the second electrode may present challenges for process intensification. In addition to the design of electrochemical cells and applied waveforms, the use of redox mediators can provide means for improving space-time yields.

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Cite This Study

Oksanen et al. (2026) studied this question.

synapsesocial.com/papers/6a1d218f02fbce9130637836https://doi.org/10.1016/j.coelec.2026.101880
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