Isoreticular Covalent Organic Frameworks with Complementary Redox Cores Enable High-Voltage All-COF Sodium Dual-Ion Batteries

Abstract Covalent organic frameworks (COFs) have emerged as promising electrode materials for sodium-ion batteries, combining molecular-level tunability with crystalline porous architectures and structural robustness. However, high-voltage all-COF batteries remain rare, as constructing complementary low-potential anodes and high-potential cathodes remains challenging. Herein, an isoreticular redox-core tailoring strategy is employed to construct complementary n-type and p-type COF electrodes for sodium dual-ion batteries. Two highly crystalline two-dimensional COFs with closely related architectures were synthesized using electron-deficient triazine and electron-rich triphenylamine redox cores, respectively. Triazine-based Trz-COF functions as a low-potential n-type anode that predominantly operates within 0.01–1.4 V vs. Na+/Na, whereas triphenylamine-based TPA-COF serves as a high-potential p-type cathode that predominantly operates within 3.4–4.2 V vs. Na+/Na for reversible PF6– storage. In situ spectroscopic analyses and theoretical calculations reveal that variation of the redox-active core dictates the charge-storage behavior and electrode potential, while the preserved framework architecture maintains efficient ion transport. Pairing these COFs yields a high-voltage all-COF sodium dual-ion battery operating over 2.0–4.2 V with an average discharge voltage of 3.40 V, delivering 116 mAh g–1 and retaining 76 mAh g–1 after 1000 cycles at 0.5 A g–1. This study establishes redox-core tailoring within an isoreticular COF family as a molecular design strategy for regulating electrochemical function in crystalline organic frameworks and demonstrates its application to high-voltage all-COF sodium dual-ion batteries.

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Journal
Journal of the American Chemical Society
Published
2026-10-05
DOI
https://doi.org/10.1021/jacs.6c13060
Primary Topic
Advancements in Battery Materials
Type
article
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article

Isoreticular Covalent Organic Frameworks with Complementary Redox Cores Enable High-Voltage All-COF Sodium Dual-Ion Batteries

Lin Zeng, Lei Wei, Yong Zuo, Puiki Leung et al.
Journal of the American Chemical Society
Advancements in Battery Materials
article

Isoreticular Covalent Organic Frameworks with Complementary Redox Cores Enable High-Voltage All-COF Sodium Dual-Ion Batteries

Lin Zeng, Lei Wei, Yong Zuo, Puiki Leung, Linyang Li, Shuai Liu, Qiang Liao, Xun Zhu, Mohd Rusllim Mohamed, Tianshou Zhao
article en

Abstract

Abstract Covalent organic frameworks (COFs) have emerged as promising electrode materials for sodium-ion batteries, combining molecular-level tunability with crystalline porous architectures and structural robustness. However, high-voltage all-COF batteries remain rare, as constructing complementary low-potential anodes and high-potential cathodes remains challenging. Herein, an isoreticular redox-core tailoring strategy is employed to construct complementary n-type and p-type COF electrodes for sodium dual-ion batteries. Two highly crystalline two-dimensional COFs with closely related architectures were synthesized using electron-deficient triazine and electron-rich triphenylamine redox cores, respectively. Triazine-based Trz-COF functions as a low-potential n-type anode that predominantly operates within 0.01–1.4 V vs. Na+/Na, whereas triphenylamine-based TPA-COF serves as a high-potential p-type cathode that predominantly operates within 3.4–4.2 V vs. Na+/Na for reversible PF6– storage. In situ spectroscopic analyses and theoretical calculations reveal that variation of the redox-active core dictates the charge-storage behavior and electrode potential, while the preserved framework architecture maintains efficient ion transport. Pairing these COFs yields a high-voltage all-COF sodium dual-ion battery operating over 2.0–4.2 V with an average discharge voltage of 3.40 V, delivering 116 mAh g–1 and retaining 76 mAh g–1 after 1000 cycles at 0.5 A g–1. This study establishes redox-core tailoring within an isoreticular COF family as a molecular design strategy for regulating electrochemical function in crystalline organic frameworks and demonstrates its application to high-voltage all-COF sodium dual-ion batteries.

Journal of the American Chemical Society
Universiti Malaysia Pahang Al-Sultan Abdullah (MY), Chongqing University (CN), Southern University of Science and Technology (CN)
Openalex Percentile: Top 22%
Advancements in Battery Materials
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