Sensors (Oct 2019)

Chaotic Signatures Exhibited by Plasmonic Effects in Au Nanoparticles with Cells

  • Hilario Martines-Arano,
  • Blanca Estela García-Pérez,
  • Mónica Araceli Vidales-Hurtado,
  • Martín Trejo-Valdez,
  • Luis Héctor Hernández-Gómez,
  • Carlos Torres-Torres

DOI
https://doi.org/10.3390/s19214728
Journal volume & issue
Vol. 19, no. 21
p. 4728

Abstract

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The evolution of the optical absorptive effects exhibited by plasmonic nanoparticles was systematically analyzed by electronic signals modulated by a Rössler attractor system. A sol-gel approach was employed for the preparation of the studied Au nanoparticles embedded in a TiO2 thin solid film. The inclusion of the nanoparticles in an inhomogeneous biological sample integrated by human cells deposited in an ITO glass substrate was evaluated with a high level of sensitivity using an opto-electronic chaotic circuit. The optical response of the nanoparticles was determined using nanosecond laser pulses in order to guarantee the sensing performance of the system. It was shown that high-intensity irradiances at a wavelength of 532 nm could promote a change in the absorption band of the localized surface plasmon resonance associated with an increase in the nanoparticle density of the film. Moreover, it was revealed that interferometrically-controlled energy transfer mechanisms can be useful for thermo-plasmonic functions and sharp selective optical damage induced by the vectorial nature of light. Immediate applications of two-wave mixing techniques, together with chaotic effects, can be contemplated in the development of nanostructured sensors and laser-induced controlled explosions, with potential applications for biomedical photo-thermal processes.

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