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February 26, 2026Chemical Reviews0 citationsOpen Access

Living Photoanodes for Solar-Driven Water Oxidation

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RERachel M. EganAVAngelo J VictoriaJZJenny Z. Zhang

Key Points

  • The aim is to explore the advancements in living photoanodes and their potential for solar energy conversion.
  • Review of biological processes in cyanobacteria for photocatalytic efficiency
  • Estimation of maximum photocurrent outputs using theoretical approaches
  • Discussion on strategies like genetic engineering and electrode design for enhancing performance
  • Identification of key biology supporting electron transport in cyanobacteria
  • Estimation of potential photocurrent output values for living photoanodes
  • Recommendations for standardized reporting and future research directions

Abstract

Photosynthetic microorganisms are abundant, self-sustaining catalysts that convert solar energy into high energy electrons. By interfacing these living catalysts with electrodes, these electrons can be harnessed for electricity generation or chemical production in sustainable solar-powered technologies. The development of these so-called living photoanodes is an emerging and highly interdisciplinary field that has progressed substantially in recent years. In this review, we chart these advancements, beginning with our current understanding of the fundamental biology underpinning the key photocatalytic and electron transport processes of oxygenic photosynthetic microorganisms─namely cyanobacteria. We then describe theoretical approaches to estimating the maximum obtainable photocurrent outputs of living photoanodes to gauge their technological potential. Next, we discuss the main strategies employed to attain these values which include genetic engineering, electrode and diffusional/polymeric mediator design. Finally, in the outlook section, we recommend standardized reporting methods to formalize the field and propose future research directions to realize the full potential of this nascent technology.

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Cite This Study

Egan et al. (2026) studied this question.

synapsesocial.com/papers/699fe24b95ddcd3a253e61fbhttps://doi.org/10.1021/acs.chemrev.5c00921
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Also Consider

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