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February 22, 2026Coordination Chemistry Reviews5 citationsOpen Access

Photocatalytic carbon dioxide reduction to value-added hydrocarbons products

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ZPZhiyuan PangBWBin WangJDJun Di

Key Points

  • The aim is to explore how photocatalytic reduction of CO2 can effectively produce valuable multi-carbon products.
  • Review of strategies for catalyst modification like morphology regulation and doping.
  • Examination of carbon-carbon coupling mechanisms crucial for C2+ product formation.
  • Summary of pathways for producing specific multi-carbon compounds such as ethylene and ethanol.
  • Integration of advanced analytical techniques to track intermediates and reaction mechanisms.
  • Identification of key factors that influence the efficiency of multi-carbon product formation.
  • Elucidation of crucial carbon-carbon coupling mechanisms driving selective CO2 reduction.
  • Insights into various catalyst platforms and enhanced light absorption strategies.

Abstract

The photocatalytic reduction of CO 2 into multi-carbon (C 2+ ) products using solar energy is a promising yet complex area of research. Compared to single-carbon products (C 1 ), C 2+ compounds have higher added value and broader application potential. This review focuses on various catalyst modification strategies—such as morphology regulation, doping, and bimetallic synergy—aimed at enhancing the efficiency of multi-carbon product formation. Special emphasis is placed on the mechanisms of carbon-carbon coupling reactions, which play a critical role in generating C 2+ products. Additionally, the pathways for producing different C 2+ products, especially ethylene and ethanol, are summarized to offer insights into their formation. This review provides a detailed examination of catalyst design, product regulation, and reaction pathways, aiming to facilitate further research and exploration in the field. • Elucidation of core C–C coupling mechanisms driving selective photocatalytic CO₂ reduction to multicarbon (C₂ + ) products. • Catalyst platforms and strategies: light absorption, charge separation, active-site exposure, coupling barriers. • Integration of in situ XANES/EXAFS, FT-IR, Raman, and 13 C-NMR techniques to map intermediates and reaction mechanisms.

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Cite This Study

Pang et al. (2026) studied this question.

synapsesocial.com/papers/699a9cc6482488d673cd27c9https://doi.org/10.1016/j.ccr.2026.217705
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