催化作用
材料科学
光热治疗
离解(化学)
密度泛函理论
氨生产
纳米颗粒
钴
合理设计
超顺磁性
氨
电子结构
化学工程
纳米技术
光化学
自旋态
热的
活动中心
活动站点
光热效应
无机化学
作者
Jinhao Li,Chunyao Fang,Yang Li,Shaoquan Li,Miaoxiang Jiang,Yujun Wang,Xiao‐Jue Bai,Yongfang Sun,Fenfen Fan,Geoffrey I. N. Waterhouse,Ang Cao,Yufei Zhao
摘要
ABSTRACT Spin‐state engineering of active sites represents a key strategy for boosting catalytic performance, as demonstrated in thermal ammonia synthesis. However, conventional promoter‐mediated ground‐state spin modulation is inherently limited by the electronic structure of the catalyst, imposing a ceiling on achievable spin tuning efficacy and hindering further advances. In this work, we developed a series of cobalt (Co) nanoparticle‐based catalysts for photothermal ammonia synthesis. By introducing Ru single atom into the Co nanoparticles, along with the addition of barium as a promoter, spin‐state engineering of Co nanoparticles was optimized under light irradiation, boosting the production rate by 3 times compared to thermal catalytic conditions. In‐situ characterization studies revealed that the hot electrons accumulate on the catalyst surface and shift the Co active sites toward a lower‐spin configuration. Supported by density functional theory (DFT) calculations, we demonstrate that this light‐induced spin state change modulates the electronic interaction between Co and N 2 , weakening the N≡N bond and lowering its dissociation energy barrier, thereby facilitating N 2 activation. This work demonstrates that spin regulation in Co‐based catalysts is an innovative design principle for developing more efficient photothermal catalysts for ammonia synthesis and other applications.
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