4.8 Review

Graphitic carbon nitride-based materials for photocatalytic antibacterial application

期刊

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.mser.2021.100610

关键词

Graphitic carbon nitride; Antibacterial; Photocatalytic; Modification; Photoresponsive; Heterojunction

资金

  1. National Science Fund for Distinguished Young Scholars [51925104]
  2. National Natural Science Foundation of China [51871162]
  3. Natural Science Fund of Hubei Province [2018CFA064]
  4. City University of Hong Kong Strategic Research Grant (SRG) [7005505, 7005264]
  5. Hong Kong Research Grants Council (RGC) General Research Funds (GRF) [11205617]

向作者/读者索取更多资源

This review summarizes the basic characteristics, preparation methods, and photocatalytic antibacterial mechanism of metal-free polymeric two-dimensional nanomaterial graphitic carbon nitride (g-C3N4), emphasizing the importance of increasing light utilization, reducing recombination of electron-hole pairs, and maintaining biocompatibility and environmental friendliness. Furthermore, various modification strategies and examples of combining g-C3N4's photocatalytic antibacterial effect with other strategies to achieve synergistic effects are introduced.
The prevalence of bacterial infections and resistance to existing antibiotics make new effective antibacterial strategies urgently needed. Photocatalytic antibacterial, an effective strategy relying on exogenous excitation, has drawn increasing attention over the past decades, owing to its controllable, safe, and non-invasive characteristics. Many photoresponsive agents have been developed. With exceptional features of abundance, facile synthesis, suitable band structure, high stability, and low toxicity, metal-free polymeric two-dimensional nanomaterial graphitic carbon nitride (g-C3N4) is an attractive photosensitizer for antibiotic-free antibacterial application. In this review, the basic structural characteristics and preparation methods of g-C3N4 are summarized. The photocatalytic antibacterial mechanism of g-C3N4 through reactive oxygen species (ROS) generation is also discussed. In order to achieve more precise and efficient antibacterial effects, we pay special attention to two aspects: (1) how to increase the utilization of visible light and reduce the recombination of electron-hole pairs, thereby enhancing the production of ROS; and (2) how to obtain effective bacteria-killing activity while maintaining good biocompatibility and environmental friendliness, which determines the practical applications of materials. Several significant modification strategies are thus introduced, including structure design, surface modification, element doping, and construction of g-C3N4-based heterojunctions. Furthermore, various typical examples of combining the photocatalytic antibacterial effect of g-C3N4 with other strategies to exert good synergistic effects are summarized. Lastly, the potential challenges and perspectives are offered. This review is expected to inspire more follow-up work to design high-performance g-C3N4-based materials for photocatalytic antibacterial application.

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