Axial-sulfur-ligand-induced coordination symmetry breaking in Co–N4 motifs for enhanced oxygen reduction reaction and durable rechargeable zinc–air batteries

Abstract

Precise control of the local atomic structure of single-atom catalysts represents a critical foundation for designing advanced electrocatalysts with specific activity and selectivity for energy conversion and storage. This work presents the facile and novel synthesis of a high-performance cobalt (Co) single atom catalyst (S–Co–N–C) featuring a dynamic, symmetry-broken S–Co–N4 moiety, which is achieved through the controlled pyrolysis of a Co-impregnated γ-cyclodextrin metal–organic framework (Co-CDMOF). Experimental and density functional theory (DFT) analyses demonstrate that the axial sulfur (S) coordination induces an asymmetric electron distribution and optimizes the electronic nature of the Co site, thereby facilitating a rapid oxygen reduction reaction (ORR) pathway. The optimized S–Co–N–C demonstrates a high positive half-wave potential (E1/2 of ∼0.79 V vs. RHE) and robust stability relative to Pt/C. Furthermore, the S–Co–N–C electrocatalyst performs effectively as an air-cathode in rechargeable zinc–air batteries (ZABs), delivering a high power density of ∼135 mW cm−2 and excellent cycling stability over 200 h of operation. This investigation establishes a promising method for designing axial coordination configuration of single-atom catalysts (SACs) and highlights the promising potential of cyclodextrin-based MOFs as a highly versatile platform for fabricating advanced materials for energy conversion and storage.

Graphical abstract: Axial-sulfur-ligand-induced coordination symmetry breaking in Co–N4 motifs for enhanced oxygen reduction reaction and durable rechargeable zinc–air batteries

Supplementary files

Article information

Article type
Communication
Submitted
23 Jan 2026
Accepted
27 Apr 2026
First published
29 Apr 2026

J. Mater. Chem. A, 2026, Advance Article

Axial-sulfur-ligand-induced coordination symmetry breaking in Co–N4 motifs for enhanced oxygen reduction reaction and durable rechargeable zinc–air batteries

Z. Meng, T. Ma, J. Li, K. Guo, J. Huang, S. Tian, Y. Qin, D. Fan, H. Lu, Y. Liu and S. Chandrasekaran, J. Mater. Chem. A, 2026, Advance Article , DOI: 10.1039/D6TA00674D

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