Covalent Organic Frameworks‐Based Hybrid Materials for Electrochemical Energy Storage: Advances in Supercapacitors and Batteries

The growing global energy demand and the need for sustainable energy technologies have accelerated the development of advanced electrochemical energy storage systems. Covalent organic frameworks, class of crystalline porous polymers formed through reversible covalent bonding, have emerged as promising materials for energy storage applications. Their tunable porosity, high surface area, structural diversity, and high chemical stability make them attractive electrode materials for supercapacitors and rechargeable batteries. This review highlights recent advances in COF-based composites and their enhanced electrochemical performance in different energy storage devices. Particular emphasis is given to rational design strategies in which COFs are combined with conductive polymers, carbon-based nanomaterials, and metal oxides. These hybrid structures help overcome the inherent limitations of pristine COFs, such as low electrical conductivity and limited redox activity. The relationship between structure, properties, and electrochemical performance of COF-based electrodes is critically discussed for batteries and supercapacitors. Key performance parameters, including specific capacity, rate capability, and cycling stability, are systematically analyzed. Despite significant progress, several challenges remain, with scalable synthesis methods, cost-effectiveness, and long-term stability. Upcoming research should focus on the development of multifunctional COF composites, environmentally friendly synthesis approaches, and the application of machine learning techniques to accelerate the optimization of high-performance energy storage materials.

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Publication Details

Journal
The Chemical Record
Published
2026-09-14
DOI
https://doi.org/10.1002/tcr.70250
Primary Topic
Covalent Organic Framework Applications
Type
article
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Covalent Organic Frameworks‐Based Hybrid Materials for Electrochemical Energy Storage: Advances in Supercapacitors and Batteries

Manzar Abbas, Ali Junaid, Aftab Ahmad Khan, Muhammad Mehdi et al.
The Chemical Record
Covalent Organic Framework Applications
article

Covalent Organic Frameworks‐Based Hybrid Materials for Electrochemical Energy Storage: Advances in Supercapacitors and Batteries

Manzar Abbas, Ali Junaid, Aftab Ahmad Khan, Muhammad Mehdi, Farasat Haider, Syeda Rubab, Tongsheng Zhang, Basit Ali Khan, Fatima Zahra, Hasnain Ali
article en

Abstract

The growing global energy demand and the need for sustainable energy technologies have accelerated the development of advanced electrochemical energy storage systems. Covalent organic frameworks, class of crystalline porous polymers formed through reversible covalent bonding, have emerged as promising materials for energy storage applications. Their tunable porosity, high surface area, structural diversity, and high chemical stability make them attractive electrode materials for supercapacitors and rechargeable batteries. This review highlights recent advances in COF-based composites and their enhanced electrochemical performance in different energy storage devices. Particular emphasis is given to rational design strategies in which COFs are combined with conductive polymers, carbon-based nanomaterials, and metal oxides. These hybrid structures help overcome the inherent limitations of pristine COFs, such as low electrical conductivity and limited redox activity. The relationship between structure, properties, and electrochemical performance of COF-based electrodes is critically discussed for batteries and supercapacitors. Key performance parameters, including specific capacity, rate capability, and cycling stability, are systematically analyzed. Despite significant progress, several challenges remain, with scalable synthesis methods, cost-effectiveness, and long-term stability. Upcoming research should focus on the development of multifunctional COF composites, environmentally friendly synthesis approaches, and the application of machine learning techniques to accelerate the optimization of high-performance energy storage materials.

The Chemical Record
Shanghai University (CN), Bahauddin Zakariya University (PK), University of Lisbon (PT), Shanghai University of Engineering Science (CN), Chulalongkorn University (TH), Government College University, Faisalabad (PK), University of Malaya (MY), Government College University, Lahore (PK), King Faisal University (SA)
Openalex Percentile: Top 24%
Covalent Organic Framework Applications
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