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  5. Selective Methane Oxidation to Methanol on Cu-Oxo Dimers Stabilized by Zirconia Nodes of an NU-1000 Metal–Organic Framework

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Article
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2019

Selective Methane Oxidation to Methanol on Cu-Oxo Dimers Stabilized by Zirconia Nodes of an NU-1000 Metal–Organic Framework

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en
2019
Vol 141 (23)
Vol. 141
DOI: 10.1021/jacs.9b02902

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Donald G Truhlar
Donald G Truhlar

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Jian Zheng
Jingyun Ye
Manuel Á. Ortuño
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Abstract

Mononuclear and dinuclear copper species were synthesized at the nodes of an NU-1000 metal-organic framework (MOF) via cation exchange and subsequent oxidation at 200 °C in oxygen. Copper-exchanged MOFs are active for selectively converting methane to methanol at 150-200 °C. At 150 °C and 1 bar methane, approximately a third of the copper centers are involved in converting methane to methanol. Methanol productivity increased by 3-4-fold and selectivity increased from 70% to 90% by increasing the methane pressure from 1 to 40 bar. Density functional theory showed that reaction pathways on various copper sites are able to convert methane to methanol, the copper oxyl sites with much lower free energies of activation. Combining studies of the stoichiometric activity with characterization by in situ X-ray absorption spectroscopy and density functional theory, we conclude that dehydrated dinuclear copper oxyl sites formed after activation at 200 °C are responsible for the activity.

How to cite this publication

Jian Zheng, Jingyun Ye, Manuel Á. Ortuño, John L. Fulton, Oliver Y. Gutiérrez, Donald M. Camaioni, Radha Kishan Motkuri, Zhanyong Li, Thomas E. Webber, B. Layla Mehdi, Nigel D. Browning, R. Lee Penn, Omar K. Farha, Joseph T. Hupp, Donald G Truhlar, Christopher J. Cramer, Johannes A. Lercher (2019). Selective Methane Oxidation to Methanol on Cu-Oxo Dimers Stabilized by Zirconia Nodes of an NU-1000 Metal–Organic Framework. , 141(23), DOI: https://doi.org/10.1021/jacs.9b02902.

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Publication Details

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Article

Year

2019

Authors

17

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1021/jacs.9b02902

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