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◆ Nature Communications2026-03-20· Spinel

Modulating coordinate site occupancy in high-entropy spinel electrocatalysts

Jihyun Baek, Kiran Hamkins, Yuzhe Li, Angel T. Garcia-Esparza, Tianying Liu, Cheng‐Tai Kuo, Jun-Sik Lee, Arron R. Potter, Sungsoon Kim, Yifan Wang, Honghe Ding, Jialu Li, Zengqing Zhuo, Jinghua Guo, Michal Bajdich, Xiaolin Zheng

原始摘要(英文原文)· Original abstract
High entropy spinel oxides provide a versatile platform for electrocatalysis because multiple metal cations can be incorporated into a single crystalline lattice, enabling tunable electronic structures. However, controlling how these cations distribute between tetrahedral and octahedral coordination sites remains a major challenge, limiting rational catalyst design. Here, we modulate cation coordination site occupancy between tetrahedral and octahedral sites in a Co–Fe–Cr–Mn–Ni framework by introducing a sixth cation (Zn, Ga, Mg, or Al) with distinct site preference energies. Using density functional theory, synchrotron X-ray absorption spectroscopy, and magnetic circular dichroism, we demonstrate that Zn preferentially occupies tetrahedral sites, driving increased octahedral occupancy of cobalt. This redistribution increases the population of octahedrally coordinated cobalt in mixed oxidation states, enhances electrical conductivity, and improves oxygen evolution reaction activity. Our findings establish coordination site occupancy as a critical design parameter, providing a strategic pathway for tailoring multicomponent spinel electrocatalysts with optimized performance. High entropy spinel oxides host multiple metals in one crystal structure with tunable catalytic properties, but controlling coordination site occupancy of metal cations is difficult. Here, the authors exploit site preference energy differences to direct metal occupancy, boosting conductivity and oxygen evolution activity.
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