π‐Contraction Induces High‑Spin Co Centers in 2D Conductive MOFs for Efficient Oxygen Reduction

ABSTRACT Two‐dimensional conductive metal–organic frameworks (c‐MOFs) are promising electrocatalysts for the oxygen reduction reaction (ORR), yet nearly all optimization strategies have focused on metal‐node modification while the ligand scaffold remains largely unexplored. Here, we report an unconventional “π‐contraction” strategy that excises the peripheral benzene rings from metallophthalocyanine (MPc) to afford contracted metalloporphyrazine (MPz) ligands (M = Co, Ni). Trimming decreases π‐electron density on the carbon framework and directs charge to the metal center, thereby reshaping its electronic structure. In CoPz–MOF, this contraction uniquely induces a high‐spin Co 3d station and stabilizes mixed Co(I)/Co(II) valence states—features absent in CoPc MOF and Ni‐based analogues. DFT calculations confirm that the high‐spin configuration confers the strongest oxygen adsorption affinity among the series, while the presence of Co(I) species further promotes O 2 chemisorption during the onset stage of ORR. Electrochemically, CoPz–MOF delivers a half‐wave potential of 0.84 V with a preferential four‐electron pathway, outperforming its counterparts. In zinc–air batteries, it achieves a peak power density of 125.6 mW cm −2 and stable operation over 500 h. This work establishes ligand‐level conjugation engineering—rather than node‐metal substitution—as a powerful strategy for tailoring metal‐center electronic structures in c‐MOF electrocatalysts.

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Publication Details

Journal
Angewandte Chemie
Published
2026-09-14
DOI
https://doi.org/10.1002/ange.1652124
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
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article

π‐Contraction Induces High‑Spin Co Centers in 2D Conductive MOFs for Efficient Oxygen Reduction

Xueru Wang, Wenmiao Chen, Lianming Zhao, Daofeng Sun et al.
Angewandte Chemie
Electrocatalysts for Energy Conversion
article

π‐Contraction Induces High‑Spin Co Centers in 2D Conductive MOFs for Efficient Oxygen Reduction

Xueru Wang, Wenmiao Chen, Lianming Zhao, Daofeng Sun, Xue Liu, Qi Liu, Zhong Xu, Miao Wang, Dongyang Xie
article en

Abstract

ABSTRACT Two‐dimensional conductive metal–organic frameworks (c‐MOFs) are promising electrocatalysts for the oxygen reduction reaction (ORR), yet nearly all optimization strategies have focused on metal‐node modification while the ligand scaffold remains largely unexplored. Here, we report an unconventional “π‐contraction” strategy that excises the peripheral benzene rings from metallophthalocyanine (MPc) to afford contracted metalloporphyrazine (MPz) ligands (M = Co, Ni). Trimming decreases π‐electron density on the carbon framework and directs charge to the metal center, thereby reshaping its electronic structure. In CoPz–MOF, this contraction uniquely induces a high‐spin Co 3d station and stabilizes mixed Co(I)/Co(II) valence states—features absent in CoPc MOF and Ni‐based analogues. DFT calculations confirm that the high‐spin configuration confers the strongest oxygen adsorption affinity among the series, while the presence of Co(I) species further promotes O 2 chemisorption during the onset stage of ORR. Electrochemically, CoPz–MOF delivers a half‐wave potential of 0.84 V with a preferential four‐electron pathway, outperforming its counterparts. In zinc–air batteries, it achieves a peak power density of 125.6 mW cm −2 and stable operation over 500 h. This work establishes ligand‐level conjugation engineering—rather than node‐metal substitution—as a powerful strategy for tailoring metal‐center electronic structures in c‐MOF electrocatalysts.

Angewandte Chemie
China University of Petroleum, East China (CN)
Openalex Percentile: Top 29%
Electrocatalysts for Energy Conversion
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