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Optimal suppression of quantization noise with pseudoperiodic multilevel phase gratings

机译:伪周期多级相位光栅对量化噪声的最优抑制

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摘要

A comprehensive two-step approach to design staircase-type multilevel diffractive phase elements (DPEs) that generate arbitrary desired diffraction patterns with the highest possible accuracy is presented. First a preliminary periodic grating with an unconstrained phase delay and an optimized nonuniform amplitude profile is designed by means of a customized iterative Fourier-transform algorithm, Then this preliminary grating is subjected to a phase quantization in which strict periodicity is forgone in favour of the best possible preservation of the shape of the power spectrum yielding a final phase only DPE with only rudimentary periodicity. An arbitrarily high similarity between the diffraction patterns of the final DPE and the preliminary grating can be achieved independently of the number D of discrete phase delay levels as long as D greater than or equal to 3. The signal-to-noise ratio of the final DPE is close to the theoretical upper limit. These properties are confirmed in computer simulations and demonstrated in optical experiments. Pseudoperiodic DPEs may have applications in optical computing, optical communication and networking, optical authentication, or coherent laser coupling. (C) 2002 Optical Society of America. [References: 24]
机译:提出了一种综合的两步法来设计阶梯型多级衍射相位元件(DPE),该阶梯型多级衍射相位元件可生成具有最高可能精度的任意所需衍射图样。首先,通过定制的傅里叶变换算法设计具有不受约束的相位延迟和优化的非均匀振幅分布的初步周期性光栅,然后对该初步光栅进行相位量化,其中严格的周期被放弃,以最好的方式进行。可能保留功率谱的形状,从而产生仅具有基本周期性的仅最终DPE。只要D大于或等于3,最终DPE和基本光栅的衍射图样之间的任意高相似性都可以独立于离散相位延迟水平的数量D来实现。最终DPE的信噪比DPE接近理论上限。这些性能在计算机仿真中得到了证实,并在光学实验中得到了证明。伪周期DPE可能在光学计算,光学通信和联网,光学认证或相干激光耦合中具有应用。 (C)2002年美国眼镜学会。 [参考:24]

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