Effects of inner scale on beam wander of stochastic electromagnetic beams through atmospheric turbulence

Hua Wu,Youquan Dan,Nan Deng, Qingsong Liu, Xuecong Ma

AOPC 2021: OPTICAL SPECTROSCOPY AND IMAGING(2021)

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Abstract
The beam wander properties of electromagnetic Gaussian Schell-model (EGSM) beam propagating in atmospheric turbulence are investigated based on the extended Huygens-Fresnel principle, the second-order moments of the Wigner distribution function (WDF) and the Andrews beam wander theory. The simplified integral formulae for the root-mean-square (fins) beam wander and the relative beam wander of EGSM beams in turbulence have been derived. Our results indicate that in a strong turbulence, the fins beam wander increases obviously with increasing inner scale, and the influence of inner scale of turbulence on the fins beam wander can not be ignored in strong turbulence. The evolution behaviors of the fins beam wander and relative beam wander in atmospheric turbulence are quite different which depend on the initial beam width, the transverse coherence width, the inner and outer scales of turbulence. Both the fins beam wander and relative beam wander can be effectively reduced by increasing the initial beam width and decreasing the transverse coherence width.
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Key words
stochastic electromagnetic beams, beam wander, modified atmospheric spectrum, effects of inner scale, Wigner distribution function
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