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Kvantovaya Elektronika, 2022, Volume 52, Number 2, Pages 160–170 (Mi qe17984)  

This article is cited in 5 scientific papers (total in 5 papers)

Biophotonics

Laser fragmentation of silicon microparticles in liquids for solution of biophotonics problems

V. Yu. Nesterova, O. I. Sokolovskayaa, L. A. Golovana, D. V. Shuleikoa, A. V. Kolchina, D. E. Presnovbca, P. K. Kashkarova, A. V. Khilovd, D. A. Kurakinad, M. Yu. Kirillinde, E. A. Sergeevaad, S. V. Zabotnova

a Faculty of Physics, Lomonosov Moscow State University
b Skobeltsyn Institute of Nuclear Physics, Lomonosov Moscow State University
c Center for Quantum Technologies, M. V. Lomonosov Moscow State University
d Institute of Applied Physics, Russian Academy of Sciences, Nizhny Novgorod
e Lobachevsky State University of Nizhny Novgorod
References:
Abstract: The possibility of manufacturing silicon nanoparticles by picosecond laser fragmentation of silicon microparticles in water is analysed. It is shown that for fragmentation duration of 40 min, the dependence of the average sizes of particles on the initial mass concentration of the micropowder varied in the range of 0.5–12 mg mL–1 is nonmonotonic, with the maximum average size of 165 nm being achieved at a concentration of 5 mg mL–1. To explain the obtained result, the simulation of propagation of a focused laser beam in a scattering suspension of silicon microparticles is performed for their different mass concentrations. It is demonstrated that at concentrations not exceeding 5 mg mL–1, fragmentation occurs in the paraxial region of the beam when it propagates deep into the cuvette with a suspension, while at higher concentrations it occurs primarily in the superficial layer owing to strong extinction. Calculations results allow the experimental features of the formation of silicon nanoparticles to be explained. Spectrophotometry measurements on suspensions of nanoparticles obtained at the initial concentration of microparticles of 12 mg mL–1 are compared with the theoretical estimates of the absorption and scattering coefficients obtained in the framework of the Mie theory. Measured optical properties indicate the potential of using fragmented nanoparticles as scattering and/or absorbing contrast agents in optical imaging of biological objects.
Keywords: silicon micro- and nanoparticles, laser fragmentation in liquids, light scattering, Monte Carlo technique, spectrophotometry.
Funding agency Grant number
Russian Science Foundation 19-12-00192
This work was supported by the Russian Science Foundation (Grant No. 19-12-00192).
Received: 24.11.2021
English version:
Quantum Electronics, 2022, Volume 52, Issue 2, Pages 160–170
DOI: https://doi.org/10.1070/QEL17984
Bibliographic databases:
Document Type: Article
Language: Russian


Citation: V. Yu. Nesterov, O. I. Sokolovskaya, L. A. Golovan, D. V. Shuleiko, A. V. Kolchin, D. E. Presnov, P. K. Kashkarov, A. V. Khilov, D. A. Kurakina, M. Yu. Kirillin, E. A. Sergeeva, S. V. Zabotnov, “Laser fragmentation of silicon microparticles in liquids for solution of biophotonics problems”, Kvantovaya Elektronika, 52:2 (2022), 160–170 [Quantum Electron., 52:2 (2022), 160–170]
Linking options:
  • https://www.mathnet.ru/eng/qe17984
  • https://www.mathnet.ru/eng/qe/v52/i2/p160
  • This publication is cited in the following 5 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Квантовая электроника Quantum Electronics
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