A 1D Co-MOF with Electronic Gating in Ligands for the High-Voltage Cathode of Sodium-Ion Batteries

Abstract Sodium-ion battery (SIB) cathodes capable of storing both cations and anions offer a promising route to high capacity and high voltage, yet anion intercalation in metal−organic framework (MOF) cathodes remains rarely observed. Here, we report a one-dimensional Co-terephthalate MOF (CityU-84) synthesized at room temperature, which exhibits a wide voltage window of 1.0−4.3 V when evaluated as a cathode in SIBs due to dual-ion intercalation. Ex situ Fourier transform infrared (FTIR) and X-ray photoelectron spectroscopy (XPS) reveal that the framework enables both PF6− intercalation at high voltages during the charging process and Na+ insertion at low voltages during the discharging process. To elucidate the origin of this dual functionality, we compare CityU-84 using unsubstituted terephthalate with its isostructural halogenated analogues (CityU-85 and CityU-86). Both halogenated MOFs show severely degraded electrochemical performance, demonstrating a ligand electronic gating effect, where electron-withdrawing substituents (e.g., Cl and Br) alter the electronic structure of the coordination framework, weakening both anion and cation interactions. Consequently, CityU-84 delivers a high reversible capacity (178 mAh g−1), together with excellent rate capability and outstanding cycling stability (88% capacity retention after 1200 cycles at 200 mA g−1). This work demonstrates that electronic gating of ligands enables dual-ion storage in pristine MOF cathodes, providing a promising platform for high-voltage organic electrode materials.

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Publication Details

Journal
Crystal Growth & Design
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.cgd.6c01177
Primary Topic
Advancements in Battery Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

A 1D Co-MOF with Electronic Gating in Ligands for the High-Voltage Cathode of Sodium-Ion Batteries

Yinger Xin, Jinglun Yang, Linkuo Li, Dan Zhao et al.
Crystal Growth & Design
Advancements in Battery Materials
article

A 1D Co-MOF with Electronic Gating in Ligands for the High-Voltage Cathode of Sodium-Ion Batteries

Yinger Xin, Jinglun Yang, Linkuo Li, Dan Zhao, Qianfeng Gu, Qichun Zhang, Yunsheng Wang, Yuan-Zheng Wang, Yuchan Zhang, Zihao Chen, Lei Zhang, Zhenjie Yuan
article en

Abstract

Abstract Sodium-ion battery (SIB) cathodes capable of storing both cations and anions offer a promising route to high capacity and high voltage, yet anion intercalation in metal−organic framework (MOF) cathodes remains rarely observed. Here, we report a one-dimensional Co-terephthalate MOF (CityU-84) synthesized at room temperature, which exhibits a wide voltage window of 1.0−4.3 V when evaluated as a cathode in SIBs due to dual-ion intercalation. Ex situ Fourier transform infrared (FTIR) and X-ray photoelectron spectroscopy (XPS) reveal that the framework enables both PF6− intercalation at high voltages during the charging process and Na+ insertion at low voltages during the discharging process. To elucidate the origin of this dual functionality, we compare CityU-84 using unsubstituted terephthalate with its isostructural halogenated analogues (CityU-85 and CityU-86). Both halogenated MOFs show severely degraded electrochemical performance, demonstrating a ligand electronic gating effect, where electron-withdrawing substituents (e.g., Cl and Br) alter the electronic structure of the coordination framework, weakening both anion and cation interactions. Consequently, CityU-84 delivers a high reversible capacity (178 mAh g−1), together with excellent rate capability and outstanding cycling stability (88% capacity retention after 1200 cycles at 200 mA g−1). This work demonstrates that electronic gating of ligands enables dual-ion storage in pristine MOF cathodes, providing a promising platform for high-voltage organic electrode materials.

Crystal Growth & Design
City University of Hong Kong (HK), City University of Hong Kong, Shenzhen Research Institute (CN)
City University of Hong Kong, Natural Science Foundation of Guangdong Province, Innovation and Technology Fund
Sustainable cities and communities
Openalex Percentile: Top 20%
Advancements in Battery Materials
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