苯甲醛
反键分子轨道
甲苯
光化学
化学
催化作用
选择性
氧气
原子轨道
电子转移
分子轨道
反应机理
分子氧
联轴节(管道)
反应中间体
脱碳
苯甲酸
醛
电子顺磁共振
结晶学
自然键轨道
偶联反应
配体(生物化学)
作者
Shuai Qin,Wen-Long Yang,Jiaolong Meng,Chen Huang,Yingzhang Shi,Zhiwen Wang,Yujie Song,Xuefeng Jiang
摘要
ABSTRACT Selective oxidation has been greatly challenging for the benzylic C─H bond from toluene to benzaldehyde. In this study, Sm 3+ doped Bi 2 WO 6 (Sm‐BWO) nanosheets are constructed through in situ lattice substitution to establish spatially coupled dual‐active sites with interfacial synergy, enabling a high toluene conversion rate of 8550 µm ol·g −1 ·h −1 with high selectivity toward benzaldehyde (>86%). Mechanistic investigations reveal that Sm‐doping induces oxygen vacancies (O V s) and Bi─O frustrated Lewis pairs (FLPs) for benzylic C─H dehydrogenation. The 4 f orbital from localized Sm enables electron injection into π* antibonding orbitals of O 2 . Orbital coupling between 4 f of Sm and 2 p of O creates a directional oxygen species transfer channel across the interface, delivering activated oxygen species for direct oxygenation of benzyl intermediate to benzaldehyde. The f ‐orbital catalysis demonstrates as a generalizable strategy for orchestrating O 2 activation for C─H functionalization. A unique perspective was provided on selective benzylic C─H oxidation by leveraging the f‐ orbital catalysis via inexpensive light rare earth.
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