4.8 Review

Photocatalytic Air Purification Using Functional Polymeric Carbon Nitrides

期刊

ADVANCED SCIENCE
卷 8, 期 24, 页码 -

出版社

WILEY
DOI: 10.1002/advs.202102376

关键词

denitrification; desulfurization; photocatalytic air purification; polymeric carbon nitrides; volatile organic compound removal

资金

  1. National Key Research and Development Program of China [2016YFA0203000]
  2. National Natural Science Foundation of China [U1905214, 21425309, 21802022, 21761132002, 21961142019, 21861130353]
  3. National Key Technologies R & D Program of China [2018YFA0209301]
  4. Chang Jiang Scholars Program of China [T2016147]
  5. 111 Project [D16008]
  6. General Research Fund of Research Grants Council [18300920, 18301117]
  7. Department Collaborative Fund of the Faculty of Liberal Arts and Social Sciences, The Education University of Hong Kong, Hong Kong Special Administrative Region, China [04490]
  8. Dean's Research Fund of the Faculty of Liberal Arts and Social Sciences, The Education University of Hong Kong, Hong Kong Special Administrative Region, China [FLASS/DRF 04554]

向作者/读者索取更多资源

PCN-based photocatalysts have attracted increasing interest for the heterogeneous catalysis of air pollutants, showing improvements in reducing the negative impacts of pollutants and converting them into valuable or non-toxic chemicals. Despite a lack of systematic summary and analysis in this field, research on functional PCN-based composite materials as photocatalysts for air pollution removal is progressing, offering insights on enhancement modifications and future challenges.
The techniques for the production of the environment have received attention because of the increasing air pollution, which results in a negative impact on the living environment of mankind. Over the decades, burgeoning interest in polymeric carbon nitride (PCN) based photocatalysts for heterogeneous catalysis of air pollutants has been witnessed, which is improved by harvesting visible light, layered/defective structures, functional groups, suitable/adjustable band positions, and existing Lewis basic sites. PCN-based photocatalytic air purification can reduce the negative impacts of the emission of air pollutants and convert the undesirable and harmful materials into value-added or nontoxic, or low-toxic chemicals. However, based on previous reports, the systematic summary and analysis of PCN-based photocatalysts in the catalytic elimination of air pollutants have not been reported. The research progress of functional PCN-based composite materials as photocatalysts for the removal of air pollutants is reviewed here. The working mechanisms of each enhancement modification are elucidated and discussed on structures (nanostructure, molecular structue, and composite) regarding their effects on light-absorption/utilization, reactant adsorption, intermediate/product desorption, charge kinetics, and reactive oxygen species production. Perspectives related to further challenges and directions as well as design strategies of PCN-based photocatalysts in the heterogeneous catalysis of air pollutants are also provided.

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