4.6 Article

Stoichiometric methane conversion to ethane using photochemical looping at ambient temperature

期刊

NATURE ENERGY
卷 5, 期 7, 页码 511-519

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s41560-020-0616-7

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资金

  1. Chinese scholarship council
  2. Chevreul Institute [FR 2638]
  3. Ministere de l'Enseignement Superieur, de la Recherche et de l'Innovation
  4. Hauts-de-France Region
  5. FEDER
  6. Region Haute-Normandie
  7. Metropole Rouen Normandie
  8. CNRS via LABEX EMC3
  9. French National Research Agency as a part of the programme 'Investissements d'avenir' [ANR-11-EQPX-0020]

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Methane activation and utilization are among the major challenges of modern science. Methane is potentially an important feedstock for manufacturing value-added fuels and chemicals. However, most known processes require excessive operating temperatures and exhibit insufficient selectivity. Here, we demonstrate a photochemical looping strategy for highly selective stoichiometric conversion of methane to ethane at ambient temperature over silver-heteropolyacid-titania nanocomposites. The process involves a stoichiometric reaction of methane with highly dispersed cationic silver under illumination, which results in the formation of methyl radicals. Recombination of the generated methyl radicals leads to the selective, and almost quantitative, formation of ethane. Cationic silver species are simultaneously reduced to metallic silver. The silver-heteropolyacid-titania nanocomposites can be reversibly regenerated in air under illumination at ambient temperature. The photochemical looping process achieves a methane coupling selectivity of over 90%, a quantitative yield of ethane of over 9%, high quantum efficiency (3.5% at 362 nm) and excellent stability. Activating methane at ambient temperature is challenging due to its stability, but could ultimately give access to a variety of other fuels and chemicals. Here, the authors present a photochemical looping strategy based on silver chemistry that converts methane to ethane under illumination at room temperature.

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