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April 27, 2026Advanced Functional Materials0 citations

Recent Progress in Photothermal‐Driven CO 2 Reduction: Fundamentals, Materials Design, and Applications

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ZYZixu YangMZMengyuan ZhuMZMengyuan Zhu

Key Points

  • This review aims to outline the fundamentals of photothermal catalysis, focusing on CO2 reduction and recent advancements in materials and processes.
  • Introduced principles and reaction forms of photothermal catalysis types.
  • Examined various catalysts, reactions, and reactors relevant to the field.
  • Discussed challenges and future directions in photothermal CO2 reduction.
  • Identified three types of mechanisms: thermo-assisted photocatalysis, photo-assisted thermocatalysis, and synergistic photothermocatalysis.
  • Highlighted improved reaction rates and energy efficiency in photothermal-driven reactions compared to traditional methods.
  • Outlined future challenges needing address for enhanced catalytic performance and scalability.

Abstract

ABSTRACT Photothermal catalysis refers to catalytic processes where both light and heat are used synergistically to promote chemical reactions. The combination of photon energy and thermal energy can enhance catalytic activity, offering advantages such as improved reaction rates, higher selectivity, and better energy efficiency compared to traditional single‐energy‐driven catalytic processes. Based on how light and heat contribute to the reaction dynamics, the mechanisms of photothermal cooperative catalysis can be classified into three distinct types, including thermo‐assisted photocatalysis, photo‐assisted thermocatalysis, and synergistic photothermocatalysis. This review starts with the introduction of different principles and reaction forms for each reaction type. Then we introduce different catalysts, reactions, and reactors in photothermal catalysis. Finally, we discuss the challenges and future prospects in this emerging field.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/69eefd9bfede9185760d44f7https://doi.org/10.1002/adfm.75533
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