Full Spectroscopic Characterization of the Molecular Oxygen-Based Methane to Methanol Conversion over Open Fe(II) Sites in a Metal-Organic Framework

被引:13
|
作者
Tofoni, Alessandro [1 ]
Tavani, Francesco [1 ]
Vandone, Marco [2 ,3 ]
Braglia, Luca [4 ]
Borfecchia, Elisa [2 ,3 ]
Ghigna, Paolo [5 ]
Stoian, Dragos Costantin [6 ]
Grell, Toni [2 ,3 ]
Stolfi, Sara [4 ]
Colombo, Valentina [2 ,3 ,7 ]
D'Angelo, Paola [1 ]
机构
[1] Univ Roma La Sapienza, Dipartimento Chim, I-00185 Rome, Italy
[2] Univ Milan, Dipartimento Chim, I-20133 Milan, Italy
[3] Univ Milan, UdR INSTM Milano, I-20133 Milan, Italy
[4] CNR Ist Off Mat, TASC, I-34149 Trieste, Italy
[5] Univ Pavia, Dipartimento Chim, I-27100 Pavia, Italy
[6] European Synchrotron Radiat Facil, Swiss Norwegian Beamlines SNBL, F-38043 Grenoble, France
[7] CNR, SCITEC, Ist Sci & Tecnol Chim Giulio Natta, I-20133 Milan, Italy
基金
瑞士国家科学基金会;
关键词
X-RAY-ABSORPTION; BASIS-SETS; OXIDATION; ACTIVATION; ETHANE; HYDROXYLATION; MECHANISM; CENTERS; IRON; MIL-100(FE);
D O I
10.1021/jacs.3c07216
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Iron-based enzymes efficiently activate molecular oxygen to perform the oxidation of methane to methanol (MTM), a reaction central to the contemporary chemical industry. Conversely, a very limited number of artificial catalysts have been devised to mimic this process. Herein, we employ the MIL-100(Fe) metal-organic framework (MOF), a material that exhibits isolated Fe sites, to accomplish the MTM conversion using O-2 as the oxidant under mild conditions. We apply a diverse set of advanced operando X-ray techniques to unveil how MIL-100(Fe) can act as a catalyst for direct MTM conversion. Single-phase crystallinity and stability of the MOF under reaction conditions (200 or 100 degrees C, CH4 + O-2) are confirmed by X-ray diffraction measurements. X-ray absorption, emission, and resonant inelastic scattering measurements show that thermal treatment above 200 degrees C generates Fe(II) sites that interact with O-2 and CH4 to produce methanol. Experimental evidence-driven density functional theory (DFT) calculations illustrate that the MTM reaction involves the oxidation of the Fe(II) sites to Fe(III) via a high-spin Fe(IV)=O intermediate. Catalyst deactivation is proposed to be caused by the escape of CH3 center dot radicals from the relatively large MOF pore cages, ultimately resulting in the formation of hydroxylated triiron units, as proven by valence-to-core X-ray emission spectroscopy. The O-2-based MTM catalytic activity of MIL-100(Fe) in the investigated conditions is demonstrated for two consecutive reaction cycles, proving the MOF potential toward active site regeneration. These findings will desirably lay the groundwork for the design of improved MOF catalysts for the MTM conversion.
引用
收藏
页码:21040 / 21052
页数:13
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