Multidimensional Engineering of ZIF-8-Based Electrocatalysts for Carbon Dioxide Reduction: A Mini Review

Abstract

Electrocatalytic carbon dioxide reduction reaction (CO2RR) represents a pivotal technology for mitigating climate change and achieving carbon neutrality, by utilizing renewable energy to transform CO2 into valuable chemical feedstocks. However, the inherent stability of CO2 molecules and the competing hydrogen evolution reactions necessitate the development of efficient, cost-effective catalysts. Metal-organic frameworks (MOFs), especially zeolitic imidazolate framework-8 (ZIF-8), are increasingly recognized as attractive materials for catalytic applications, owing to their tunable structures, high porosity, and well-defined active sites. Despite such progress, challenges such as poor electrical conductivity and limited selectivity hinder their practical application. This review systematically examines recent advancements in enhancing ZIF-8-based electrocatalysts for CO2RR through multidimensional structural engineering strategies. Key approaches include lattice engineering for optimizing morphology and size, modulating the coordination microenvironment via chemical doping, constructing heterogeneous interface to design composite catalyst, and topological transformation to derive high-performance materials. By correlating structural modifications with catalytic performance, this work elucidates design principles for activity. Additionally, this work also discusses future development direction for ZIF-8-based catalysts according to the current research results, aiming to provide guidance for the rational design of next-generation MOF-based catalysts for sustainable CO2 conversion and energy storage.

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Article information

Article type
Highlight
Submitted
05 Jun 2025
Accepted
22 Jul 2025
First published
25 Jul 2025

Chem. Commun., 2025, Accepted Manuscript

Multidimensional Engineering of ZIF-8-Based Electrocatalysts for Carbon Dioxide Reduction: A Mini Review

J. Gu, J. Huang, Z. Jin and T. Wei, Chem. Commun., 2025, Accepted Manuscript , DOI: 10.1039/D5CC03189C

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