催化作用
化学
甲醇
选择性
甲烷
活动站点
铑
氧合物
激进的
电子顺磁共振
光化学
反应中间体
活动中心
双金属片
活性氧
多相催化
热液循环
甲烷厌氧氧化
原位
无机化学
光谱学
组合化学
部分氧化
Boosting(机器学习)
作者
Fubo Gu,Shuheng Tian,Liu Pang,Shixiang Yu,Hanbing Zhu,Zeyan Cen,Junzhong Xie,Mei Xue,Jinglin Xie,Dongmei Han,Guangsheng Guo,Xiayan Wang,Zhihua Wang,Ding Ma
标识
DOI:10.1021/acscatal.6c03635
摘要
Abstract The direct oxidation of methane to oxygenates under mild conditions presents a promising yet challenging pathway for natural gas valorization, primarily constrained by the difficulty in simultaneously achieving high atom efficiency and high intrinsic activity at active sites. In this work, we elucidate the structure–activity relationship of Rh/TiO2 catalysts for the selective oxidation of methane to methanol using O2/H2 as oxidants. Through comprehensive in situ DRIFTS and TPSR characterizations, we identify small rhodium (Rh) clusters, rather than isolated Rh single atoms, as the active centers for C–H bond activation. Guided by this mechanistic insight, we develop a controlled in situ reconstruction strategy that deliberately transforms the initially predominant, poorly active single-atom sites into highly active Rh clusters via a simple H2/O2 treatment. This reconstruction leads to a more than 20-fold enhancement in catalytic activity. The optimized catalyst achieves a methanol productivity of 443.2 mmol·gRh−1·h−1 with over 99% selectivity at 70 °C and 42 bar under acidic promotion, compared with 21.20 mmol·gRh−1·h−1 for the pristine catalyst, which is among the highest values reported for Rh-based systems under mild conditions. Mechanistic studies by electron paramagnetic resonance spectroscopy reveal that in situ-generated •OH radicals from O2 and H2 are the key active species, which couple with CH3• intermediates to form methanol; the addition of acid further promotes •OH generation and enhances productivity.
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