4.7 Article

Methanation of CO2 over Ni/Al2O3 modified with alkaline earth metals: Impacts of oxygen vacancies on catalytic activity

期刊

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
卷 44, 期 16, 页码 8197-8213

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2019.02.014

关键词

Methanation of CO2; Alkaline earth metals; Reaction intermediates; Oxygen vacancies; DRIFTS and EPR study

资金

  1. Strategic International Scientific and Technological Innovation Cooperation Special Funds of National Key R&D Program of China [2016YFE0204000]
  2. Program for Taishan Scholars of Shandong Province Government
  3. Recruitment Program of Global Young Experts (Thousand Youth Talents Plan)
  4. Natural Science Fund of Shandong Province [ZR2017BB002]
  5. Australia Research Council [DP180101788]

向作者/读者索取更多资源

This study investigates the impacts of the alkaline earth metal (Mg, Ca, Sr, Ba) additives on properties and performances of nickel catalysts for CO2 methanation. The results show that addition of Mg, Sr, and Ba creates more pores while Ca addition leads to merge of small pores. The alkalinity of the catalyst increases with the addition of Mg, Ca, Sr or Ba, however, it does not necessarily enhance the catalytic activity. The degree of reduction of nickel species is another important factor affecting catalyst activity. Mg or Ca addition promotes the reverse water gas shift reaction to form more CO but not the methanation. In converse, with the addition of Sr or Ba, the activities for methanation increased drastically, especially in the low temperature region. In situ Diffuse Reflection Infrared Fourier Transform Spectroscopy (DRIFTS) studies show that *OH, *CO3, *CO2, -CHx, HCOO*, *CO and H2CO* species are main reaction intermediates. Mg or Ca promotes the carbonate formation. Sr or Ba promotes *CO and H2CO* formation, which are the important reaction intermediates in the conversion of CO2 to CH4. In addition, the Electron Paramagnetic Resonance (EPR) characterization shows that the catalyst modified with Sr species generates the oxygen vacancies that prevent electrons from being paired, forming a Lewis basic position. The oxygen vacancies generated are crucial for enhancing the catalytic activities for methanation at the low reaction temperatures. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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