Controlling CO2 Hydrogenation Selectivity by Metal-Supported Electron Transfer

Xiaoyu Li, Jian Lin, Lin Li, Yike Huang, Xiaoli Pan, Sebastián E. Collins, Yujing Ren, Yang Su, Leilei Kang, Xiaoyan Liu, Yanliang Zhou, Hua Wang, Aiqin Wang, Botao Qiao, Xiaodong Wang, Tao Zhang

Research output: Contribution to journalArticlepeer-review

166 Scopus citations

Abstract

Tuning CO2 hydrogenation selectivity to obtain targeted value-added chemicals and fuels has attracted increasing attention. However, a fundamental understanding of the way to control the selectivity is still lacking, posing a challenge in catalyst design and development. Herein, we report our new discovery in ambient pressure CO2 hydrogenation reaction where selectivity can be completely reversed by simply changing the crystal phases of TiO2 support (anatase- or rutile-TiO2) or changing metal loadings on anatase-TiO2. Operando spectroscopy and NAP-XPS studies reveal that the determining factor is a different electron transfer from metal to the support, most probably as a result of the different extents of hydrogen spillover, which changes the adsorption and activation of the intermediate of CO. Based on this new finding, we can not only regulate CO2 hydrogenation selectivity but also tune catalytic performance in other important reactions, thus opening up a door for efficient catalyst development by rational design.

Original languageEnglish
Pages (from-to)19983-19989
Number of pages7
JournalAngewandte Chemie - International Edition
Volume59
Issue number45
DOIs
StatePublished - 2 Nov 2020
Externally publishedYes

Keywords

  • CO
  • crystal phase
  • electron transfer
  • hydrogen spillover
  • selectivity

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