4.7 Article

A heterostructured ZnAl-LDH@ZIF-8 hybrid as a bifunctional photocatalyst/adsorbent for CO2 reduction under visible light irradiation

期刊

CHEMICAL ENGINEERING JOURNAL
卷 446, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2022.137003

关键词

ZnAl-LDH/ZIF-8 heterostructure; Bifunctional photocatalyst/adsorbent; Visible-light-response; CO2 reduction

资金

  1. National Natural ScienceFoundation of China [21667019, 22066017]
  2. First Training-class High-end Talents Projects of Science and Technology Innovation in Jiangxi Province [CK202002473]
  3. Key Project of Natural ScienceFoundation of Jiangxi Province [20171ACB20016]
  4. Jiangxi Province Major Academic and Technical Leaders Cultivating Object Program [20172BCB22014]
  5. Science and Technology Department of Jiangxi Province [20181BCB18003, 20181ACG70025]
  6. Key Laboratory of Photochemical Conversion and Optoelectronic Materials, TIPC, CSA [PCOM201906]
  7. Aviation ScienceFoundation of China [2017ZF56020]
  8. Key Project of Science and Technology Research of Jiangxi Provincial Department of Education [GJJ191044]
  9. Jiangxi Province double thousand plan project [205201000020]

向作者/读者索取更多资源

Artificial photocatalytic technology is widely used for reducing atmospheric CO2 and converting it into usable fuels. This study focuses on the technical issues of LDH and ZIF materials in the photocatalytic CO2 reduction process and designs a new heterostructured ZnAl-LDH@ZIF-8 hybrid photocatalyst/adsorbent. Through structural characterizations, it is found that the hybrid photocatalyst exhibits high activity, selectivity, and CO2 conversion.
Artificial photocatalytic technology is widely used to reduce atmospheric CO2 and convert it into a series of available carbon containing fuels. Among a series of photocatalysts, LDH (layered double hydroxides) and ZIF (zeolitic imidazolate framework) materials have attracted interest of many researchers because of their special physical and chemical properties. In this work, we center on the technical problems of LDH and ZIF in photocatalytic CO2 reduction process, we combined the respective advantages of LDH and ZIF materials to design a new heterostructured ZnAl-LDH@ZIF-8 hybrid photocatalyst/adsorbent, which had a wide range of visible light response, high activity and high selectivity. Through a series of structural characterizations, the results revealed that ZnAl-LDH as a catalyst was excited and produced photoelectric charge under the excitation of sunlight. Meanwhile, the CO2 adsorbed on the catalyst surface was reduced to CO by photogenerated electrons which were migrated from ZnAl-LDH to ZIF-8 surface. The ZnAl-LDH@ZIF-8 hybrid showed a remarkable photocatalytic CO2 conversion of 9.03 mu mol.g(-1).h(-1) and a high selectivity of 97.77%. In addition, the effect on the excitation transfer of photoelectric charge and photocatalytic CO production of interaction between ZnAl-LDH and ZIF-8 were studied, and the relationships among catalyst compositions, surface structures, photoelectric properties, and catalytic performances were clarified. This research supplies a significant method for the construction and development of new type photocatalyst/adsorbent heterostructure, and provides new viewpoints and technical support for in-depth understanding of photocatalytic CO2 reduction.

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