异核分子
化学
催化作用
氧化加成
苊
光化学
氧化磷酸化
苯甲醛
离解(化学)
甲醇
过渡金属
苯甲醇
表面改性
立体化学
结晶学
组合化学
金属
氧气
还原消去
甲烷氧化偶联
作者
Wen Jiang,Yuxuan Wu,Kecan Dou,Qiang Xiao,Fumin Zhang,De‐Li Chen,Weidong Zhu
摘要
ABSTRACT The transition from conventional single‐atom catalysts to heteronuclear neighboring single‐atom catalysts presents a compelling strategy to address the limitations associated with isolated metal sites in multielectron oxidative transformations. Herein, we report a Co–Mn heteronuclear single‑atom catalyst (Co 1 ‐Mn 1 /NC) in which atomically dispersed Co and Mn species are anchored on a nitrogen‑doped carbon support to form well‑defined neighboring active pairs with an interatomic distance of ∼2.6 Å. This configuration provides a synergistic platform that markedly outperforms its monometallic Co and Mn counterparts in two challenging oxidative C–H functionalization reactions: the selective oxidation of acenaphthene to 1‑acenaphthenol (99.9% conversion, 97.7% selectivity) and the oxidative condensation of benzyl alcohol with methanol to benzaldehyde dimethyl acetal (63.4% conversion, 94.7% selectivity). Atomic‑resolution characterization and DFT calculations elucidate the origin of this synergy, revealing a division of labor between the two metal centers. In acenaphthene oxidation, the Co–Mn pair cooperatively activates molecular oxygen and facilitates C–H bond dissociation with a substantially reduced energy barrier. In the oxidative condensation, the Co site preferentially activates methanol while the adjacent Mn site stabilizes the key *PhCHO intermediate. This work establishes heteronuclear neighboring Co–Mn pairs as a platform for synergistic multifunctional catalysis.
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