Publication | Open Access
Spectroscopic Definition of a Highly Reactive Site in Cu-CHA for Selective Methane Oxidation: Tuning a Mono-μ-Oxo Dicopper(II) Active Site for Reactivity
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Citations
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References
2021
Year
Using UV-vis and resonance Raman spectroscopy, we identify a [Cu<sub>2</sub>O]<sup>2+</sup> active site in O<sub>2</sub> and N<sub>2</sub>O activated Cu-CHA that reacts with methane to form methanol at low temperature. The Cu-O-Cu angle (120°) is smaller than that for the [Cu<sub>2</sub>O]<sup>2+</sup> core on Cu-MFI (140°), and its coordination geometry to the zeolite lattice is different. Site-selective kinetics obtained by operando UV-vis show that the [Cu<sub>2</sub>O]<sup>2+</sup> core on Cu-CHA is more reactive than the [Cu<sub>2</sub>O]<sup>2+</sup> site in Cu-MFI. From DFT calculations, we find that the increased reactivity of Cu-CHA is a direct reflection of the strong [Cu<sub>2</sub>OH]<sup>2+</sup> bond formed along the H atom abstraction reaction coordinate. A systematic evaluation of these [Cu<sub>2</sub>O]<sup>2+</sup> cores reveals that the higher O-H bond strength in Cu-CHA is due to the relative orientation of the two planes of the coordinating bidentate O-Al-O T-sites that connect the [Cu<sub>2</sub>O]<sup>2+</sup> core to the zeolite lattice. This work along with our earlier study ( <i>J. Am. Chem. Soc</i>, 2018, 140, 9236-9243) elucidates how zeolite lattice constraints can influence active site reactivity.
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