AI Article Synopsis

  • Microorganisms colonize materials like stone, leading to deterioration that affects their color, appearance, and durability.
  • Nanotechnology, particularly ZnO-based nanomaterials, offers a non-toxic and effective solution against biodeterioration caused by specific bacteria.
  • ZnG nanocomposites show strong antibacterial and antibiofilm properties, making them promising for preserving cultural heritage without harmful environmental impacts.

Article Abstract

The colonization of microorganisms and their subsequent interaction with stone substrates under different environmental conditions encourage deterioration of materials by multiple mechanisms resulting in changes in the original color, appearance and durability. One of the emerging alternatives to remedy biodeterioration is nanotechnology, thanks to nanoparticle properties such as small size, no-toxicity, high photo-reactivity, and low impact on the environment. This study highlighted the effects of ZnO-based nanomaterials of two bacteria isolated from the Temple of Concordia (Agrigento's Valley of the Temples in Sicily, Italy) that are involved in biodeterioration processes. The antimicrobial activities of ZnO-nanorods (Zn-NRs) and graphene nanoplatelets decorated with Zn-NRs (ZNGs) were evaluated against the Gram positive and two isolates of the Gram negative . ZNGs demonstrated high antibacterial and antibiofilm activities on several substrates such as stones with different porosity. In the case of ZNGs, a marked time- and dose-dependent bactericidal effect was highlighted against all bacterial species. Therefore, these nanomaterials represent a promising tool for developing biocompatible materials that can be exploited for the conservation of cultural heritage. These nanostructures can be successfully applied without releasing toxic compounds, thus spreading their usability.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7075178PMC
http://dx.doi.org/10.3390/nano10020335DOI Listing

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