Materials & Energyarticle2026-08-10

Spin-quenching cobalt center for efficient ammonia synthesis derived from oxide mixology

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Abstract

The spin polarization plays a critical role in heterogeneous catalysis by influencing the properties of active sites and thereby altering catalytic performance. However, precise construction of active sites with well-tuned spin states remains challenging. Here we demonstrate to manipulate the spin polarization of ferromagnetic cobalt (Co) centers in nitride catalysts by regulating the oxide mixology of precursors. The oxide mixology modulated the interaction between CoOx and MoO3 from local interfacial bonding to remote contacting. Strong and weak interactions induce the generations of Co3Mo3N and Co/γ-Mo2N phases with low-spin and high-spin polarized Co centers, respectively, and Co centers with weakened spin polarization can facilitate the ammonia synthesis catalytic performance. Through the theoretical verification, we demonstrate that the spin-quenching configuration mitigates exchange splitting of Co centers, enabling efficient d-π* back-donation and enhancing N2 activation. These findings open new perspectives for understanding the spin effect in heterogeneous catalysis and constructing well-defined spintronic catalysts. Spin polarization plays a pivotal role in heterogeneous catalysis, but the precise construction of active sites with tailored spin states remains challenging. Here, the authors regulate the oxide mixology of precursor materials to tune the spin polarization of ferromagnetic cobalt centers in nitride catalysts, providing new insights into spin effects in catalysis and a strategy for designing spintronic catalysts for ammonia synthesis.

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View paper (DOI)Open access versionOpenAlexNature CommunicationsPublished 2026-08-10

Institutions: Chinese Academy of Sciences, University of Chinese Academy of Sciences, National University of Singapore, Soochow University, Tsinghua University, National Laboratory for Superconductivity, Institute of Physics