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Application of 2D Materials for Adsorptive Removal of Air Pollutants

期刊

ACS NANO
卷 16, 期 11, 页码 17687-17707

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c07937

关键词

2D materials; air pollution; absorption; filtration; particulate matter; removal of PM2; 5; toxic gas; photothermal degradation; airborne infectious microbes; recycling

资金

  1. National Creative Research Initiative (CRI) Center for Multi-Dimensional Directed Nanoscale Assembly
  2. Na-tional Research Foundation of Korea (NRF)
  3. [2015R1A3A2033061]
  4. [N01200616]

向作者/读者索取更多资源

Air pollution is a major global safety issue, and 2D materials with their unique properties and advantages have the potential to be used as adsorbent materials for environmental decontamination. Graphene oxide and reduced graphene oxide have attracted attention due to their low cost synthesis and high performance, and different material designs have been proposed to enhance their filtration capabilities.
Air pollution is on the priority list of global safety issues, with the concern of fatal environmental and public health deterioration. 2D materials are potential adsorbent materials for environmental decontamination, owing to their high surface area, manageable interlayer binding, large surface-to-volume ratio, specific binding capability, and chemical, thermal, and mechanistic stability. Specifically, graphene oxide and reduced graphene oxide have been attracting attention, taking advantage of their low cost synthesis, excessive oxygen containing surface functionalities, and intrinsic aqueous dispersibility, making them desirable for the development of cost-effective, high performance air filters. Many different material designs have been proposed to expand their filtration capability, including the functionalization and integration with other metals and metal oxides, which act not only as binding agents to the target pollutants but also as antimicrobial agents. This review highlights the advantages and drawbacks of 2D materials for air filtration and summarizes the interrelationships among various strategies and the resultant filtration performance in terms of structural engineering, morphology control, and material compositions. Finally, potential future directions are suggested toward the idealized designs of 2D material based air filters.

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