AI Article Synopsis

  • The Raman technique, particularly using surface-enhanced Raman scattering (SERS) with noble metal nanostructures, offers high sensitivity and ease of use for detecting pyocyanin without requiring sample preparation.
  • The study focuses on the use of anodic aluminum oxide (AAO) as a substrate with controlled roughness to enhance Raman signals, achieving a sensitive detection limit of 96 nM for pyocyanin concentrations.

Article Abstract

Pyocyanin is considered a maker of () infection. Pyocyanin is among the toxins released by the bacteria. Therefore, the development of a direct detection of PYO is crucial due to its importance. Among the different optical techniques, the Raman technique showed unique advantages because of its fingerprint data, no sample preparation, and high sensitivity besides its ease of use. Noble metal nanostructures were used to improve the Raman response based on the surface-enhanced Raman scattering (SERS) technique. Anodic metal oxide attracts much interest due to its unique morphology and applications. The porous metal structure provides a large surface area that could be used as a hard template for periodic nanostructure array fabrication. Porous shapes and sizes could be controlled by controlling the anodization parameters, including the anodization voltage, current, temperature, and time, besides the metal purity and the electrolyte type/concentration. The anodization of aluminum foil results in anodic aluminum oxide (AAO) formation with different roughness. Here, we will use the roughness as hotspot centers to enhance the Raman signals. Firstly, a thin film of gold was deposited to develop gold/alumina (Au/AAO) platforms and then applied as SERS-active surfaces. The morphology and roughness of the developed substrates were investigated using scanning electron microscopy (SEM) and atomic force microscopy (AFM) techniques. The Au/AAO substrates were used for monitoring pyocyanin secreted from microorganisms based on the SERS technique. The results showed that the roughness degree affects the enhancement efficiency of this sensor. The high enhancement was obtained in the case of depositing a 30 nm layer of gold onto the second anodized substrates. The developed sensor showed high sensitivity toward pyocyanin with a limit of detection of 96 nM with a linear response over a dynamic range from 1 µM to 9 µM.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11352426PMC
http://dx.doi.org/10.3390/bios14080399DOI Listing

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