Nanoplasmonic methods in angular spectroscopy of nanoscale biological objects


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Abstract

The paper presents the results of calculating the angular spectra of light reflection under the condition of excitation of surface plasmons in the Kretschman scheme. The silver layer in this scheme plays the role of a reference material, the minimum in the angular spectrum of which serves as a reference point for the shift of the minimum of the angular spectrum when a layer of the studied biological material is added to the considered layered system, which were melanin and biological tissue. As a result of the work, specific pronounced minima in the angular spectra were obtained, which make it possible to identify these materials with a high degree of accuracy due to the narrow resonance peaks in the angular reflection spectra, which are spaced from the peak in the reflection from the silver film by certain angles. The method contains all the characteristic features of the resonance spectroscopy method; the conditions for the excitation of a surface plasmon at the metal boundary act as resonance conditions.

About the authors

Valeriy V. Yatsishen

Volgograd State University

Author for correspondence.
Email: yatsyshen.valeriy@volsu.ru

References

  1. Lin J. et al. Polarization-controlled tunable directional coupling of surface plasmon polaritons. Science. 2013. Vol. 340, No, 6130, pp. 331-334. DOI: https://doi.org/10.1126/science.1233746.
  2. Aleksandrov Yu.M., Yatsishen V.V. Negative group velocity of surface polaritons in a metallic film nanostructure. Zhurnal nano- i elektronnoj fiziki, 2017, vol. 9, no. 3, pp. 03039-1. DOI: https://doi.org/10.21272/jnep.9(3).03039. (In Russ.)
  3. Aleksandrov Yu.M., Yatsishen V.V. Surface polaritons with negative group velocity in a structure with a transition layer. Zhurnal nano- i elektronnoj fiziki, 2016, vol. 8, no. 1, pp. 01013-1. DOI: https://doi.org/10.21272/jnep.8(1).01013. (In Russ.)
  4. Mishra A.K., Mishra S.K., Verma R.K. Graphene and beyond graphene MoS2: A new window in surface-plasmonresonance-based fiber optic sensing. The Journal of Physical Chemistry C, 2016, vol. 120, no. 5, pp. 2893–2900. DOI: https://doi.org/10.1021/acs.jpcc.5b08955.

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Copyright (c) 2020 Yatsishen V.

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