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April 1, 2026ChemCatChem0 citationsOpen Access

Integrating Light‐Harvesting, Electron‐Accumulating, and Proton‐Supply Functions Into a Single Catalyst for Efficient CO 2 Reduction

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WHWenqing HuangMIMaho ImaiKKKento Kosugi

Key Points

  • The research aims to develop a catalyst for CO2 reduction by integrating light-harvesting, electron-accumulating, and proton-supply functions into a single molecular system.
  • Developed a novel iron porphyrin complex, FeNDI, incorporating naphthalene diimide moieties.
  • Assessed intrinsic light-harvesting ability without external photosensitizers.
  • Evaluated electron-accumulating capacity for enhanced durability.
  • Investigated proton-supply ability for interaction with CO2 species.
  • Achieved a turnover number of 611 for CO production, the highest reported to date.
  • Demonstrated successful integration of light-harvesting, electron-accumulating, and proton-supply functions.

Abstract

ABSTRACT The development of efficient molecular catalysts for photochemical CO 2 reduction is a central challenge in artificial photosynthesis. The efficiency of this reaction depends on three critical elementary processes, namely light harvesting, electron transfer, and proton transfer. To realize efficient catalysts, the catalytic system for photochemical CO 2 reduction should include following three functions: light‐harvesting, electron‐accumulating, and proton‐supply. However, creating a single molecular system that simultaneously integrates all three functions remains challenging. In this study, a novel iron porphyrin complex, 5,10,15,20‐tetrakis4‐( N ‐(pentan‐3‐yl)‐1,4,5,8‐naphthalenetetracarboxylic diimide‐ N ‐yl)phenyl porphyrinato iron(III) chloride ( FeNDI ), was developed which successfully incorporates these three key functions through the incorporation of naphthalene diimide (NDI) moieties at the porphyrin meso ‐positions. FeNDI exhibits intrinsic light‐harvesting ability, enabling the reaction to proceed without external photosensitizers. Additionally, it demonstrates electron‐accumulating ability, which enhances catalytic durability, while also exhibiting proton‐supply ability, which allows the interaction between the coordinated CO 2 species and proton‐supplying sites. Consequently, this complex achieved a turnover number of 611 for CO production, which is the highest value reported to date among relevant systems. This study therefore demonstrates the successful integration of all the three essential functions into a single catalyst molecule, offering a powerful strategy for the design of high‐performance solar energy conversion systems.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69ccb62016edfba7beb87cc8https://doi.org/10.1002/cctc.70684
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