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April 12, 2026ACS Central Science5 citationsOpen Access

Controlling Photocatalytic Methane Conversion Pathways: Challenges and Future Directions

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YFYingying FanGuangzhou UniversityXJXiaoyan JinCenter for NanoScienceZGZ. H. GuoCenter for NanoScience

Key Points

  • The aim is to improve photocatalytic methane conversion by understanding and controlling its reaction pathways.
  • Decomposed methane conversion into three steps: reactive species formation, coupling, and intermediate transformation.
  • Examined factors influencing reaction pathways and selectivity.
  • Integrated observations from literature to develop a unified mechanistic overview.
  • Highlighted the challenges of limited product diversity in methane conversion.
  • Distilled design principles for photocatalysts to enhance efficiency.
  • Outlined key motifs that govern control over methane utilization.

Abstract

Photocatalytic methane conversion offers a sustainable route to transform the most inert C1 molecule into valuable oxygenates and hydrocarbons under ambient conditions. Recent progress has been made in the selective formation of methanol, ethanol, acetic acid, and C2 hydrocarbons, with notable efficiency. However, limited product diversity and an incomplete mechanistic understanding remain major barriers to further progress. This outlook deconstructs photocatalytic methane conversion into three elementary steps: formation of reactive species, coupling of reactive species, and transformation of intermediate products. This stepwise perspective enables a clearer identification of the factors governing individual reaction pathways and overall selectivity. By adopting a pathway-centric framework, the outlook integrates disparate observations from the literature into a unified mechanistic picture, elucidating how control over reactive-species generation, coupling modes, and intermediate evolution dictates reaction outcomes. From this analysis, general design principles and recurring control motifs are distilled, providing practical guidelines for the rational design of photocatalysts and reaction architectures aimed at more efficient and selective methane utilization.

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Cite This Study

Fan et al. (2026) studied this question.

synapsesocial.com/papers/69db361c4fe01fead37c46b2https://doi.org/10.1021/acscentsci.6c00119
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