Adaptive optics correction of beam spread in biological tissues

被引:3
作者
Baykal, Yahya [1 ]
机构
[1] Cankaya Univ, Dept Elect Elect Engn, Mimar Sinan Cad 4, TR-06790 Ankara, Turkey
关键词
Biological tissue turbulence; Beam spread; Adaptive optics; Adaptive optics correction; GAUSSIAN-BEAM; AVERAGE INTENSITY; VORTEX BEAM; ARRAY; TURBULENCE; LENGTH; WIDTH;
D O I
10.1016/j.jqsrt.2022.108145
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Beam spread in turbulent biological tissues is examined when the tissue is excited with a collimated Gaussian laser beam. Adaptive optics correction is applied to the beam spread in the form of piston only (P Only), tilt only (T Only), piston + tilt (P + T), and the reduction in the beam spread is evaluated as com-pared to the no adaptive optics (No AO) corrected beam spread. No AO and adaptive optics corrected beam spread are expressed for various biological tissue types, against the variations in the strength co-efficient of the refractive-index fluctuations, source size, small length-scale factor of turbulence, tissue length, fractal dimension, characteristic lengths of heterogeneity and the wavelength. For the examined tissue types of liver parenchyma (mouse), intestinal epithelium (mouse), upper dermis (human) and deep dermis (mouse), No AO beam spread and the adaptive optics corrected beam spread are found to increase as the strength coefficient of the refractive-index fluctuations, tissue length, fractal dimension, the char-acteristic lengths of heterogeneity increase, and to decrease as the source size, small length-scale factor, wavelength increase. Reduction ratio of P + T correction is almost the same for all the evaluated cases which is 74%.(C) 2022 Elsevier Ltd. All rights reserved.
引用
收藏
页数:6
相关论文
共 35 条
  • [1] Andrews L.C., 2005, LASER BEAM PROPAGATI, P58, DOI [DOI 10.1117/3.626196, 10.1117/3.626196]
  • [2] Effect of wavelength and beam width on penetration in light-tissue interaction using computational methods
    Ash, Caerwyn
    Dubec, Michael
    Donne, Kelvin
    Bashford, Tim
    [J]. LASERS IN MEDICAL SCIENCE, 2017, 32 (08) : 1909 - 1918
  • [3] Scintillations of partially coherent multiple Gaussian beams in turbulence
    Baykal, Yahya
    Eyyuboglu, Halil T.
    Cai, Yangjian
    [J]. APPLIED OPTICS, 2009, 48 (10) : 1943 - 1954
  • [4] Average intensity and spreading of an elliptical Gaussian beam propagating in a turbulent atmosphere
    Cai, YJ
    He, SL
    [J]. OPTICS LETTERS, 2006, 31 (05) : 568 - 570
  • [5] Refractive indices of human skin tissues at eight wavelengths and estimated dispersion relations between 300 and 1600 nm
    Ding, HF
    Lu, JQ
    Wooden, WA
    Kragel, PJ
    Hu, XH
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2006, 51 (06) : 1479 - 1489
  • [6] Optical properties of animal tissues in the wavelength range from 350 to 2600 nm
    Filatova, Serafima A.
    Shcherbakov, Ivan A.
    Tsvetkov, Vladimir B.
    [J]. JOURNAL OF BIOMEDICAL OPTICS, 2017, 22 (03)
  • [7] Determination of Coherence Length in Biological Tissues
    Fixler, Dror
    Duadi, Hamootal
    Ankri, Rinat
    Zalevsky, Zeev
    [J]. LASERS IN SURGERY AND MEDICINE, 2011, 43 (04) : 339 - 343
  • [8] Laser array beam propagation through liver tissue
    Gokce, Muhsin Caner
    Baykal, Yahya
    Ata, Yalcin
    [J]. JOURNAL OF VISUALIZATION, 2020, 23 (02) : 331 - 338
  • [9] Gradshteyn I., 2014, TABLE INTEGRALS SERI
  • [10] Optical properties of biological tissues: a review
    Jacques, Steven L.
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2013, 58 (11) : R37 - R61