4.8 Article

Nickel@Siloxene catalytic nanosheets for high-performance CO2 methanation

Journal

NATURE COMMUNICATIONS
Volume 10, Issue -, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-019-10464-x

Keywords

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Funding

  1. Ontario Ministry of Research and Innovation (MRI)
  2. Ministry of Economic Development, Employment and Infrastructure (MEDI)
  3. Ministry of the Environment and Climate Change's (MOECC) Best in Science (BIS) Award
  4. Ontario Center of Excellence Solutions 2030 Challenge Fund
  5. Ministry of Research Innovation and Science (MRIS) Low Carbon Innovation Fund (LCIF)
  6. Imperial Oil
  7. University of Toronto's Connaught Innovation Fund (CIF)
  8. Connaught Global Challenge (CGC) Fund
  9. Natural Sciences and Engineering Research Council of Canada (NSERC)
  10. National Natural Science Foundation of China [21878203, 21406153]
  11. Shanxi International Cooperation Project [201703D421037]
  12. Shanxi Provincial Key Innovative Research Team in Science and Technology [2014131006]
  13. Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi [2017137]
  14. Natural Science Foundation of Shanxi Province [201801D121061]
  15. Program for the Outstanding Innovative Teams of Higher Learning Institutions of Shanxi [154010146-s]
  16. NSERC PDF program
  17. DOE Office of Science [DE-AC02-06CH11357]

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Two-dimensional (2D) materials are of considerable interest for catalyzing the heterogeneous conversion of CO2 to synthetic fuels. In this regard, 2D siloxene nanosheets, have escaped thorough exploration, despite being composed of earth-abundant elements. Herein we demonstrate the remarkable catalytic activity, selectivity, and stability of a nickel@siloxene nanocomposite; it is found that this promising catalytic performance is highly sensitive to the location of the nickel component, being on either the interior or the exterior of adjacent siloxene nanosheets. Control over the location of nickel is achieved by employing the terminal groups of siloxene and varying the solvent used during its nucleation and growth, which ultimately determines the distinct reaction intermediates and pathways for the catalytic CO2 methanation. Significantly, a CO2 methanation rate of 100 mmol g(Ni)(-1) h(-1) is achieved with over 90% selectivity when nickel resides specifically between the sheets of siloxene.

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