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volume 12 issue 3 pages 215

Layer-by-Layer Multifractal Scanning of Optically Anisotropic Architectonics of Blood Plasma Films: Fundamental and Applied Aspects

Alexander Ushenko 1, 2
Natalia Pavlyukovich 3
Oksana Khukhlina 3
Olexander Pavlyukovich 4
Mykhaylo Gorsky 5
Iryna Soltys 2
Alexander V. Dubolazov 2
Alexander G Ushenko 5, 6
Olexander Salega 2
Ivan Mikirin 2
Jun Zheng 1
Zhebo Chen 1
Bin Lin 7
2
 
Optics and Publishing Department, Chernivtsi National University, 58000 Chernivtsi, Ukraine
3
 
Department of Internal Medicine, Clinical Pharmacology and Occupational Diseases, Bucovinian State Medical University, 58013 Chernivtsi, Ukraine
4
 
Department of Forensic Medicine and Medical Law, Bucovinian State Medical University, 58000 Chernivtsi, Ukraine
5
 
Computer Science Department, Chernivtsi National University, 58002 Chernivtsi, Ukraine
Publication typeJournal Article
Publication date2025-02-28
scimago Q2
wos Q3
SJR0.459
CiteScore3.5
Impact factor1.9
ISSN23046732
Abstract

This study focuses on the topographic structure of optical anisotropy maps (theziograms) of dehydrated blood plasma films (facies) to identify and utilize markers for diagnosing self-similarity (multifractality) in the birefringence parameters of supramolecular protein networks. The research is based on the Jones-matrix analytical framework, which describes the formation of polarization-structural speckle fields in polycrystalline blood plasma facies. In the proposed model, algorithms were developed to relate the real and imaginary parts of the complex elements of the Jones matrix to the theziograms of linear and circular birefringence. To experimentally implement these algorithms, a novel optical technology was introduced for polarization-interference registration and phase scanning of the laser speckle field of blood plasma facies. The laser-based Jones-matrix layer-by-layer theziography relies on polarization filtration and the digital recording of interference patterns from microscopic images of blood plasma facies. This process includes digital 2D Fourier reconstruction and phase-by-phase scanning of the object field of complex amplitudes, enabling the acquisition of phase sections of laser polarization-structural speckle field components scattered with varying multiplicities. Jones-matrix images of supramolecular networks, along with their corresponding theziograms of linear and circular birefringence, were obtained for each phase plane. The experimental data derived from laser layer-by-layer Jones-matrix theziography were quantitatively analyzed using two complementary approaches: statistical analysis (central moments of the 1st to 4th orders) and multifractal analysis (spectra of fractal dimension distributions). As a result, the most sensitive markers—namely asymmetry and kurtosis—were identified, highlighting changes in the statistical and scale self-similar structures of the theziograms of linear and circular birefringence in blood plasma facies. The practical aspect of this work is to evaluate the diagnostic potential of the Jones-matrix theziography method for identifying and differentiating changes in the birefringence of supramolecular networks in blood plasma facies caused by the long-term effects of COVID-19. For this purpose, a control group (healthy donors) and three experimental groups of patients, confirmed to have had COVID-19 one-to-three years prior, were formed. Within the framework of evidence-based medicine, the operational characteristics of the method—sensitivity, specificity, and accuracy—were assessed. The method demonstrated excellent accuracy in the differential diagnosis of the long-term effects of COVID-19. This was achieved by statistically analyzing the spectra of fractal dimensions of Jones-matrix theziograms reconstructed in the phase plane of single scattering within the volume of blood plasma facies.

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Ushenko A. et al. Layer-by-Layer Multifractal Scanning of Optically Anisotropic Architectonics of Blood Plasma Films: Fundamental and Applied Aspects // Photonics. 2025. Vol. 12. No. 3. p. 215.
GOST all authors (up to 50) Copy
Ushenko A., Pavlyukovich N., Khukhlina O., Pavlyukovich O., Gorsky M., Soltys I., Dubolazov A. V., Ushenko A. G., Salega O., Mikirin I., Zheng J., Chen Z., Bin Lin Layer-by-Layer Multifractal Scanning of Optically Anisotropic Architectonics of Blood Plasma Films: Fundamental and Applied Aspects // Photonics. 2025. Vol. 12. No. 3. p. 215.
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RIS Copy
TY - JOUR
DO - 10.3390/photonics12030215
UR - https://www.mdpi.com/2304-6732/12/3/215
TI - Layer-by-Layer Multifractal Scanning of Optically Anisotropic Architectonics of Blood Plasma Films: Fundamental and Applied Aspects
T2 - Photonics
AU - Ushenko, Alexander
AU - Pavlyukovich, Natalia
AU - Khukhlina, Oksana
AU - Pavlyukovich, Olexander
AU - Gorsky, Mykhaylo
AU - Soltys, Iryna
AU - Dubolazov, Alexander V.
AU - Ushenko, Alexander G
AU - Salega, Olexander
AU - Mikirin, Ivan
AU - Zheng, Jun
AU - Chen, Zhebo
AU - Bin Lin
PY - 2025
DA - 2025/02/28
PB - MDPI
SP - 215
IS - 3
VL - 12
SN - 2304-6732
ER -
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@article{2025_Ushenko,
author = {Alexander Ushenko and Natalia Pavlyukovich and Oksana Khukhlina and Olexander Pavlyukovich and Mykhaylo Gorsky and Iryna Soltys and Alexander V. Dubolazov and Alexander G Ushenko and Olexander Salega and Ivan Mikirin and Jun Zheng and Zhebo Chen and Bin Lin},
title = {Layer-by-Layer Multifractal Scanning of Optically Anisotropic Architectonics of Blood Plasma Films: Fundamental and Applied Aspects},
journal = {Photonics},
year = {2025},
volume = {12},
publisher = {MDPI},
month = {feb},
url = {https://www.mdpi.com/2304-6732/12/3/215},
number = {3},
pages = {215},
doi = {10.3390/photonics12030215}
}
MLA
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Ushenko, Alexander, et al. “Layer-by-Layer Multifractal Scanning of Optically Anisotropic Architectonics of Blood Plasma Films: Fundamental and Applied Aspects.” Photonics, vol. 12, no. 3, Feb. 2025, p. 215. https://www.mdpi.com/2304-6732/12/3/215.