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Diffraction of a Gaussian Beam with Limited cross Section by a Volume Phase Grating under Waveguide Mode Resonance

机译:波导模式谐振下的体积相位光栅具有有限横截面的高斯光束的衍射

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摘要

In this work, the diffraction of a Gaussian beam on a volume phase grating was researched theoretically and numerically. The proposed method is based on rigorous coupled-wave analysis (RCWA) and Fourier transform. The Gaussian beam is decomposed into plane waves using the Fourier transform. The number of plane waves is determined using the sampling theorem. The complex reflected and transmitted amplitudes are calculated for each RCWA plane wave. The distribution of the fields along the grating for the reflected and transmitted waves is determined using inverse Fourier transform. The powers of the reflected and transmitted waves are determined based on these distributions. Our method shows that the energy conservation law is satisfied for the phase grating. That is, the power of the incident Gaussian beam is equal to the sum of the powers of the reflected and transmitted beams. It is demonstration of our approach correctness. The numerous studies have shown that the spatial shapes of the reflected and transmitted beams differ from the Gaussian beam under resonance. In additional, the waveguide mode appears also in the grating. The spatial forms of the reflected and transmitted beams are Gaussian in the absence of resonance. It was found that the width of the resonance curves is wider for the Gaussian beam than for the plane wave. However, the spectral and angular sensitivities are the same as for the plane wave. The resonant wavelengths are slightly different for the plane wave and the Gaussian beam. Numerical calculations for four refractive index modulation coefficients of the grating medium were carried out by the proposed method. The widths of the resonance curves decrease with the increasing in the refractive index modulation. Moreover, the reflection coefficient also increases.
机译:在这项工作中,在理论上和数值上研究了体积相光栅上高斯光束的衍射。该方法基于严格的耦合波分析(RCWA)和傅里叶变换。高斯光束使用傅里叶变换将高斯光束分解成平面波。使用采样定理确定平面波的数量。为每个RCWA平面波计算复杂的反射和透射幅度。使用逆傅里叶变换确定沿光栅的沿光栅的田地的分布。基于这些分布确定反射和透射波的功率。我们的方法表明,对阶段光栅满足节能法。也就是说,入射高斯光束的力量等于反射和透射光束的功率之和。它是我们对方法的正确性。许多研究表明,反射和透射光束的空间形状与在谐振下的高斯光束不同。在另外,波导模式也出现在光栅中。在没有共振的情况下,反射和透射光束的空间形式是高斯。发现谐振曲线的宽度对于高斯光束而言比平面波更宽。然而,光谱和角度敏感性与平面波相同。对于平面波和高斯光束,谐振波长略有不同。通过所提出的方法对光栅介质的四个折射率调制系数的数值计算。随着折射率调制的增加,谐振曲线的宽度随着折射率调制的增加而降低。此外,反射系数也增加。

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