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October 2, 2025Catalysts6 citationsOpen Access

Metal-Organic Frameworks and Covalent Organic Frameworks for CO2 Electrocatalytic Reduction: Research Progress and Challenges

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YHYuyuan HuangHZHaiyan ZhuYWYongle Wang

Key Points

  • Metal-organic frameworks enhance CO2 conversion efficiency through improved conductivity and optimized stability.
  • Covalent organic frameworks achieve efficient catalysis with the precise design of metal active sites and framework optimization.
  • Both frameworks exhibit excellent selectivity toward valuable products like CO and formic acid, despite facing stability challenges.
  • Future research should combine in situ characterization with machine learning to deepen understanding and practical applications.

Abstract

This paper provides a systematic review of the latest advancements in metal-organic frameworks (MOFs) and covalent organic frameworks (COFs) for electrocatalytic carbon dioxide reduction. Both materials exhibit high specific surface areas, tunable pore structures, and abundant active sites. MOFs enhance CO2 conversion efficiency through improved conductivity, optimized stability, and selective regulation—including bimetallic synergy, pulse potential strategies, and tandem catalysis. COFs achieve efficient catalysis through precise design of single or multi-metal active sites, optimization of framework conjugation, and photo/electro-synergistic systems. Both types of materials demonstrate excellent selectivity toward high-value-added products (CO, formic acid, C2+ hydrocarbons), but they still face challenges such as insufficient stability, short operational lifespan, high scaling-up costs, and poor electrolyte compatibility. Future research should integrate in situ characterization with machine learning to deepen mechanistic understanding and advance practical applications.

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Cite This Study

Huang et al. (2025) studied this question.

synapsesocial.com/papers/68de68ea83cbc991d0a21366https://doi.org/10.3390/catal15100936
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