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Importance of Methane Chemical Potential for Its Conversion to Methanol on Cu-Exchanged Mordenite.

Jian ZhengInsu LeeElena KhramenkovaMeng WangBo PengOliver Y GutiérrezJohn L FultonDonald M CamaioniRachit KhareAndreas JentysGary L HallerEvgeny A PidkoMaricruz Sanchez-SanchezJohannes A Lercher
Published in: Chemistry (Weinheim an der Bergstrasse, Germany) (2020)
Copper-oxo clusters exchanged in zeolite mordenite are active in the stoichiometric conversion of methane to methanol at low temperatures. Here, we show an unprecedented methanol yield per Cu of 0.6, with a 90-95 % selectivity, on a MOR solely containing [Cu3 (μ-O)3 ]2+ active sites. DFT calculations, spectroscopic characterization and kinetic analysis show that increasing the chemical potential of methane enables the utilization of two μ-oxo bridge oxygen out of the three available in the tricopper-oxo cluster structure. Methanol and methoxy groups are stabilized in parallel, leading to methanol desorption in the presence of water.
Keyphrases
  • carbon dioxide
  • anaerobic digestion
  • density functional theory
  • molecular docking
  • metal organic framework
  • molecular dynamics simulations
  • human health
  • molecular dynamics
  • structural basis