AI Article Synopsis

  • Biological methods for silver nanocomposite synthesis promote environmentally-friendly practices but face limitations, such as the unintended formation of silver chlorides during the process.
  • The research emphasizes using bioactive sources like milk to isolate lactobacillus strains (Lactobacillus curvatus and Lactobacillus fermentum) for synthesizing various biosilver nanocomposites.
  • Two innovative mediation methods, "direct method" and "modified method," were developed, leading to the successful synthesis of three types of nanocomposites, with findings illustrating their complex structures and the role of organic molecules secreted by the lactobacillus strains in the reduction of silver ions.

Article Abstract

The biological methods are considered as environmental-eco-friendly methods for the silver nanocomposites mediation and are widely used in this context. However, the biological methods go along with the relevant limitations, for instance simultaneous synthesis of silver chlorides (AgNCl) type during the AgNPs mediation process. Therefore, the present research is coming to summarize several aspects in this context. Firstly, to present the possible promotion of the sustainable development using bioactive source (e.g. milk) as a source of two different available and new lactobacillus strains (Lactobacillus curvatus and Lactobacillus fermentum). Secondly, to show the ability of the respective isolates to be involved in mediation of various biosilver nanocomposites ((Bio)NCs) synthesis. Moreover, at this stage, for the first time, two (Bio)NCs mediation methods, called "direct method" and "modified method", have been developed, thus three types (AgNPs, AgNCl and AgNP@AgNCl) of nanocomposites mediated by two different Lactobacillus isolates take place. The interdisciplinary approach included using several spectroscopic, microscopic, spectrometric and thermogravimetric methods demonstrated that all six synthesized nanoparticles (three AgNPs, AgNCl and AgNP@AgNCl types from each source) consist of complex structure including both metallic silver core as well as organic surface deposits. The spectrometric technique allowed to identification of the organics branching surface, naturally secreted by the used Lactobacillus isolates during the inoculation step, suggesting the presence of amino-acids sequences which are direct connected with the reduction of silver ion to metal silver, and subsequently with the formation of coated (Bio)NCs and nucleation process. Moreover, based on the obtained results, the mediation mechanism of each (Bio)NCs has been proposed, suggesting that the formation of AgNPs, AgNCl and AgNP@AgNCl types occurs in different manners with faster synthesis firstly of AgNCl, then of the AgNPs type. No differences between the (Bio)NCs synthesized by two different Lactobacillus isolates have been noticed indicating no discrepancies between metabolites secreted by the respective sources.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9892381PMC
http://dx.doi.org/10.1186/s11671-023-03777-wDOI Listing

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Article Synopsis
  • Biological methods for silver nanocomposite synthesis promote environmentally-friendly practices but face limitations, such as the unintended formation of silver chlorides during the process.
  • The research emphasizes using bioactive sources like milk to isolate lactobacillus strains (Lactobacillus curvatus and Lactobacillus fermentum) for synthesizing various biosilver nanocomposites.
  • Two innovative mediation methods, "direct method" and "modified method," were developed, leading to the successful synthesis of three types of nanocomposites, with findings illustrating their complex structures and the role of organic molecules secreted by the lactobacillus strains in the reduction of silver ions.
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