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Propagation properties of partially coherent beams through turbulent media with coherent modes representation

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Języki publikacji
EN
Abstrakty
EN
The partially coherent beams propagating through turbulent atmosphere have been studied in the past using coherent mode representation. In this research, the propagation of any modes of Hermite-Gaussian beam in a turbulent atmosphere is investigated and analytical formula for the average intensity of these beams is derived. The power in bucket (PIB) for any modes is also examined. The number of modes which exist in a partially coherent beam with known degree of global coherence (ratio of correlation length and the waist width of the Gaussian-Schell model (GSM) beam) is determined and the PIB for partially coherent beams is investigated using coherent mode representation.
Czasopismo
Rocznik
Strony
549--558
Opis fizyczny
Bibliogr. 15 poz.,
Twórcy
autor
autor
  • Photonics Laboratory, Physics Department, Iran University of Science and Technology, Tehran, Iran
Bibliografia
  • [1] FANTE R.L., Wave propagation in random media: a system approach, [In] Progress in Optics, E. Wolf [Ed.], Elsevier, Amsterdam, 1985, Vol. 22, pp. 341–98.
  • [2] ANDREWS L.C., PHILLIPS R.L., Laser Beam Propagation through Random Media, SPIE Press, Bellingham, Washington 1998.
  • [3] WANG S.C.H, PLONUS M.A., Optical beam propagation for a partially coherent source in the turbulent atmosphere, Journal of the Optical Society of America 69(9), 1979, pp. 1297–304.
  • [4] LEADER J.C., Atmospheric propagation of partially coherent radiation, Journal of the Optical Society of America 68(2), 1978, pp. 175–85.
  • [5] SHIRAI T., DOGARIU A., WOLF E., Mode analysis of spreading of partially coherent beams propagating through atmospheric turbulence, Journal of the Optical Society of America A: Optics, Image Science and Vision 20(6), 2003, pp. 1094–102.
  • [6] YANGJIAN CAI, SAILING HE, Propagation of a partially coherent twisted anisotropic Gaussian Schell-model beam in a turbulent atmosphere, Applied Physics Letters 89(4), 2006, p. 041117.
  • [7] EYYUBOGLU H.T., BAYKAL Y., Analysis of reciprocity of cos-Gaussian and cosh-Gaussian laser beams in turbulent atmosphere, Optics Express 12(20), 2004, pp. 4659–74.
  • [8] EYYUBOGLU H.T., BAYKAL Y., Average intensity and spreading of cosh-Gaussian laser beams in the turbulent atmosphere, Applied Optics 44(6), 2005, pp. 976–83.
  • [9] BAYKAL Y., Correlation and structure functions of Hermite-sinusoidal-Gaussian laser beams in a turbulent atmosphere, Journal of the Optical Society of America A: Optics, Image Science and Vision 21(7), 2004, pp. 1290–9.
  • [10] YANGJIAN CAI, SAILING HE, Average intensity and spreading of an elliptical Gaussian beam propagating in a turbulent atmosphere, Optics Letters 31(5), 2006, pp. 568–70.
  • [11] EYYUBOGLU H.T., ARPALI C., BAYKAL Y.K., Flat topped beams and their characteristics in turbulent media, Optics Express 14(10), 2006, pp. 4196–207.
  • [12] MANDEL L.M., WOLF E., Optics Coherence and Quantum Optics, Cambridge University Press, Cambridge, England 1995.
  • [13] FRIBERG A.T., SUDOL R.J., Propagation parameters of Gaussian Schell-model beams, Optics Communications 41(6), 1982, pp. 383–7.
  • [14] SIEGMAN A.E., How to (maybe) measure laser beam quality, OSA TOPS, Vol. 17, 1998, p. 184.
  • [15] HAI XING YAN, SHU SHAN LI, DE LIANG ZHANG, SHE CHEN, Numerical simulation of an adaptive optics system with laser propagation in the atmosphere, Applied Optics 39(18), 2000, pp. 3023–31.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW7-0009-0049
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