催化作用
氧气
纳米棒
环己烷
激进的
选择性
离解(化学)
光化学
材料科学
氧化物
吸附
格子(音乐)
化学
极化(电化学)
氧原子
分子氧
无机化学
铁磁性
化学物理
结晶学
多相催化
物理化学
原子氧
自旋极化
自旋态
作者
Xi Zhang,Shichao Zhao,Shuangfeng Xing,X D Liu,C B Liu,Bin Zhang,Z K Li,Wentao Hao,Panzhe Qiao,Conghui Wang,Yong Qin
摘要
ABSTRACT The selective aerobic oxidation of alkanes plays a pivotal role in the sustainable conversion of hydrocarbons. However, designing catalysts that facilitate the selective generation of radicals while avoiding side reactions (such as over‐oxidation) remains a major challenge. Herein, we demonstrate the enhanced spin polarization and lattice oxygen migration on CoO x /Fe 2 O 3 catalyst for cyclohexane oxidation under solvent‐free conditions. We introduce highly dispersed CoO x clusters on iron oxide nanorods (Co/FeNR) through atomic layer deposition, forming interfacial Co–O–Fe active sites. The high‐spin Co atoms modulate the spin‐state of neighboring Fe atoms via double‐exchange interaction, promoting the adsorption and dissociation of triplet molecular oxygen. Meanwhile, Co effectively enhances the mobility of lattice oxygen, further forming the interface‐confined radical intermediate. Both spin polarization‐promoted oxygen activation and lattice oxygen migration drive the transformation of interface‐confined radicals, thus suppressing side reactions and enhancing selectivity. Benefiting from these effects, the 5Co/FeNR achieves 14.6% conversion and 82.7% selectivity for KA oil and mass‐specific reaction rate of 830.7 mmol·g cat −1 ·h −1 , which is approximately 6 times that of FeNR. This study provides valuable insights into the rational design of efficient oxidation catalysts.
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