4.7 Article

Structural evolution and catalytic performance in CO2 hydrogenation reaction of ZnO-ZrO2 composite oxides

期刊

APPLIED SURFACE SCIENCE
卷 587, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apsusc.2022.152884

关键词

Surface structure; Solid solution; In situ characterization; Reaction mechanism; Structure-activity relation

资金

  1. National Natural Science Foundation of China [92145302, 91945301, 91745202, 22011530114]
  2. Chinese Academy of Sciences
  3. Changjiang Scholars Program of Ministry of Education of China

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In this study, ZnO-ZrO2 composite oxides were prepared via co-precipitation method and their structural evolution and catalytic performance in CO2 hydrogenation reaction were comprehensively studied. The phase structures of the composite oxides evolved with increasing Zr content, leading to different nucleation and growth behaviors of Zn-doped ZrO2 solid solution nanoparticles compared to ZnO nanoparticles. The composite oxides exhibited higher catalytic activity than pure ZnO, t-ZrO2, and m-ZrO2, with different selectivity towards CH3OH and CO production. The key intermediates for CO2 hydrogenation to methanol and CO were identified as bidentate formate species and carbonates/bicarbonates species, respectively.
ZnO-ZrO2 composite oxides are used as catalysts for CO2 hydrogenation reaction. Herein, we prepare a series of ZnO-ZrO2 composite oxides via co-precipitation method and comprehensively study their structural evolution and catalytic performance in CO2 hydrogenation reaction. Via combined spectroscopic and microscopic characterization techniques, we found that, as the Zr content increased, phase structures of ZnO-ZrO2 composite oxides evolved from the mixture of hexagonal ZnO phase and Zn-doped ZrO2 solid solution phases to the pure Zn-doped ZrO2 solid solution phase. Zn-doped ZrO2 solid solution nanoparticles of mixed-phased ZnO-ZrO(2 )composite oxides were observed to preferentially nucleate and grow within the bulk of ZnO nanoparticles. Surfaces of mixed-phased ZnO-ZrO2 composite oxides are enriched with Zn, while the pure Zn-doped ZrO2 solid solutions exhibit uniform bulk and surface compositions. ZnO-ZrO2 composite oxides are much more catalytic active than pure ZnO, t-ZrO2 and m-ZrO2 in catalyzing CO2 hydrogenation reactions. The pure Zn-doped ZrO2 solid solution phase exhibit high selectivity toward CH3OH production, while pure ZnO, t-ZrO2, m-ZrO2 and mixed-phased ZnO-ZrO2 composite oxides exhibit high selectivity toward CO production. Bidentate formate species and car-bonates/bicarbonates species are the key intermediates of the CO2 hydrogenation to methanol and CO, respectively. These results deepen the fundamental understanding of structure-activity relation and reaction mechanisms for ZnO-ZrO2 composite oxides-catalyzed CO2 hydrogenation reaction.

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