Integration of bio-responsive silver in 1D photonic crystals: towards the colorimetric detection of bacteria.
Giuseppe Maria PaternòLiliana MoscardiStefano DoniniAaron M RossSilvia M PietralungaNicholas Dalla VedovaSimone NormaniIlka KriegelGuglielmo LanzaniFrancesco ScotognellaPublished in: Faraday discussions (2021)
The colour purity and versatility of fabrication of one-dimensional photonic crystals (1D PhCs) make them ideal candidates for colorimetric sensing of a variety of analytes. For instance, the detection of bacterial contaminants in food via colorimetric sensors can be highly appealing, as most of the existing detection techniques are in general time-consuming and the read-out requires specialised personnel. Here, we present a colorimetric sensor based on hybrid plasmonic/photonic 1D crystals. We demonstrate that the modification of the silver plasmon resonance brought about by the effective silver/bacterium interaction can be translated into the visible spectral region, producing a change in the structural colour. In addition, we observe a superior colorimetric sensitivity against the Gram negative Escherichia coli compared to the Gram positive Micrococcus luteus, a result that we attribute to the more efficient electrostatic interaction and cellular adhesion between the silver surface and the Gram-negative bacteria outer membrane. This approach demonstrates that in principle an easy colorimetric detection of bacterial contaminants can be achieved through the use of bio-responsive plasmonic materials, such as silver, whose selective electrostatic interaction with bacterial cell wall is well-known and occurs without the need of chemical functionalisation.
Keyphrases
- magnetic resonance
- gold nanoparticles
- label free
- gram negative
- loop mediated isothermal amplification
- sensitive detection
- escherichia coli
- contrast enhanced
- hydrogen peroxide
- real time pcr
- multidrug resistant
- fluorescent probe
- cell wall
- living cells
- energy transfer
- high speed
- single molecule
- cancer therapy
- drinking water
- silver nanoparticles
- nitric oxide
- optical coherence tomography
- drug delivery
- pseudomonas aeruginosa
- climate change
- human health
- high resolution
- quantum dots
- candida albicans