

FOLLOWUS
1. a School of Engineering University of Leicester
2. b Department of Chemistry University of Manchester
3. c School of Life and Health Sciences Aston University
4. d Department of Genetics and Genome Biology University of Leicester Leicester UK
5. e Department of Farmacy and Biotechnology University of Bologna
Online First:17 February 2021,
Published:2021
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Aude Cumont, Andrew R. Pitt, Peter A. Lambert, et al. Properties, mechanism and applications of diamond as an antibacterial material[J]. Functional Diamond2021, 1(1): 1-28.
Aude Cumont, Andrew R. Pitt, Peter A. Lambert, et al. Properties, mechanism and applications of diamond as an antibacterial material[J]. Functional Diamond2021, 1(1): 1-28. DOI: 10.1080/26941112.2020.1869434.
ntibiotic resistance in bacteria is a current threat causing an increasing number of infections of difficult clinical management. While the overuse and misuse of antibiotics are investigated to reduce them
the need for alternatives to approaches is rising. Carbon-based materials shown recent moderate to high antibacterial properties and diamond
thanks to its superior mechanical
tribological
electrical
chemical and biological quality is a choice material to investigate for safe antibacterial films
coatings and particles. Here
the antibacterial properties of diamond films
nanodiamonds
DLC films and a comprehensive list of the composites developed from them are discussed along with a summary of the bacterial strains used and the most efficient composition and/or concentration discovered. In a later stage
the mechanisms of action and the parameters that are believed to influence them are discussed and finally
an overview of the biomedical and food industry applications is given.
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