醋酸
甲烷
化学
光解
产量(工程)
选择性
氧气
甲烷氧化偶联
联轴节(管道)
锰
光化学
无机化学
活性氧
金属
布朗斯特德-洛瑞酸碱理论
人工光合作用
活化能
甲烷厌氧氧化
Boosting(机器学习)
化学工程
工作(物理)
偶联反应
材料科学
作者
Baiyang Yu,Wenlong Li,Xuan Tang,Lu Cheng,Jiawei Zhang,Shuobing Yang,Fudong Liu,Jing Xu,Ying Zhang,Chengsi Pan,Xiaoming Cao,Yongfa Zhu,Yang Lou
标识
DOI:10.1038/s41467-025-64505-9
摘要
Direct oxidation of methane (DOM) into high-value C2+ products using molecular oxygen (O2) is essential for the sustainable production of clean energy and bulk chemicals, but is still challenging due to the difficult C-H activation and uncontrollable C-C coupling process. Herein, we design and construct the Fe-(μ-O)-Zn dual-atom sites by supporting Fe and Zn atoms on ZSM-5 (Fe1-Zn1/ZSM-5), which achieves the DOM by O2 to acetic acid under ambient temperature and pressure. The Fe-(μ-O)-Zn dual-atom sites yield an acetic acid productivity of 3006 μmol•gcat-1•h-1 with 86.8% selectivity (total C2+ products selectivity of 93.0%) for at least 20 hours at 25 oC and atmospheric pressure. The mutual electronic modulation between Fe and Zn shifts the d-band center of Fe 3d in Fe-(μ-O)-Zn dual-atom sites upwards, which promotes the formation and stabilization of highly reactive Fe=O species through O2 photodissociation and thereby enhances the C-H bond activation of CH4. The Fe-(μ-O)-Zn dual-atom reaction sites (spatial distance of 2.7 Å) boost the C-C coupling of key CH3 and HCHO intermediate species, which steadily produce acetic acid and other C2+ oxygenates. This work would broaden the avenue towards the sustainable conversion of methane to value-added C2+ products under ambient temperature and pressure.
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