4.8 Article

Synergy of the catalytic activation on Ni and the CeO2-TiO2/Ce2Ti2O7 stoichiometric redox cycle for dramatically enhanced solar fuel production

期刊

ENERGY & ENVIRONMENTAL SCIENCE
卷 12, 期 2, 页码 767-779

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8ee03069c

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资金

  1. National Natural Science Foundation of China [21476232, 21590792, 21776271, 21676269, 21603170, 91645203]
  2. National Key Projects for Fundamental Research and Development of China [2016YFA0202801]
  3. Strategic Priority Research Program'' of the Chinese Academy of Sciences [XDB17020100]
  4. Department of Science and Technology of Liaoning province [2015020086-101]
  5. China Postdoctoral Science Foundation [2018T111034]
  6. Fundamental Research Funds for the Central Universities [xtr0218016, cxtd2017004]
  7. K. C. Wong Education Foundation

向作者/读者索取更多资源

Solar thermochemical approaches to CO2 and H2O splitting have emerged as an attractive pathway to solar fuel production. However, efficiently producing solar fuel with high redox kinetics and yields at lower temperature remains a major challenge. In this study, Ni promoted ceria-titanium oxide (CeO2-TiO2) redox catalysts were developed for highly effective thermochemical CO2 and H2O splitting as well as partial oxidation of CH4 at 900 degrees C. Unprecedented CO and H-2 production rates and productivities of about 10-140 and 5-50 times higher than the current state-of-the-art solar thermochemical carbon dioxide splitting and water splitting processes were achieved with simultaneous close to complete CH4 conversions and high selectivities towards syngas. The underlying mechanism for the exceptional reaction performance was investigated by combined experimental characterization and density functional theory (DFT) calculations. It is revealed that the metallic Ni and the Ni/oxide interface manifest catalytic activity for both CH4 activation and CO2 or H2O dissociation, whereas CeO2-TiO2 enhances the lattice oxygen transport via the CeO2-TiO2/Ce2Ti2O7 stoichiometric redox cycle for CH4 partial oxidation and the subsequent CO2 or H2O splitting promoted by catalytically active Ni. Such findings substantiate the significance of the synergy between the reactant activation by catalytic sites and the stoichiometric redox chemistry governing oxygen ion transport, paving the way for designing prospective materials for sustainable solar fuel production.

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