4.8 Article

Broad-Spectrum Solvent-free Layered Black Phosphorus as a Rapid Action Antimicrobial

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 15, 页码 17340-17352

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c01739

关键词

antibacterial; antimicrobial; bacteria; fungi; phosphorus

资金

  1. Australian Postgraduate Award (APA)/Research Training Program (RTP) scheme of the Australian government
  2. Australian Research Council [LE150100001]
  3. MASSIVE under the National Computational Merit Allocation Scheme [y41, kl59]
  4. Jack Brockhoff Foundation (JBF) [4655-2019]
  5. Austrian Science Fund (FWF) [Y41] Funding Source: Austrian Science Fund (FWF)

向作者/读者索取更多资源

The study demonstrates the broad-spectrum antimicrobial activity of few-layered black phosphorus at nanogram concentrations against various bacteria and fungal species. Medically relevant surfaces can be imparted with antimicrobial properties through functionalization with few-layer BP, while the self-degrading properties of BP provide a practical pathway for the deployment of novel low-dimensional materials as antimicrobial agents.
Antimicrobial resistance has rendered many conventional therapeutic measures, such as antibiotics, ineffective. This makes the treatment of infections from pathogenic micro-organisms a major growing health, social, and economic challenge. Recently, nanomaterials, including two-dimensional (2D) materials, have attracted scientific interest as potential antimicrobial agents. Many of these studies, however, rely on the input of activation energy and lack real-world utility. In this work, we present the broad-spectrum antimicrobial activity of few-layered black phosphorus (BP) at nanogram concentrations. This property arises from the unique ability of layered BP to produce reactive oxygen species, which we harness to create this unique functionality. BP is shown to be highly antimicrobial toward susceptible and resistant bacteria and fungal species. To establish cytotoxicity with mammalian cells, we showed that both L929 mouse and BJ-5TA human fibroblasts were metabolically unaffected by the presence of BP. Finally, we demonstrate the practical utility of this approach, whereby medically relevant surfaces are imparted with antimicrobial properties via functionalization with few-layer BP. Given the self-degrading properties of BP, this study demonstrates a viable and practical pathway for the deployment of novel low-dimensional materials as antimicrobial agents without compromising the composition or nature of the coated substrate.

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