基于旋转极化器分析系统复杂里埃系数的总阻抗测量
Geliztle A Parra-Escamilla1,2, Joel Cervantes-L1, Jorge L Flores1
1Electro-Photonics Department, University Center of Exact Sciences and Engineering (CUCEI), University of Guadalajara, Av. Revolución No. 1500, CP. 44430 Guadalajara, Jalisco, Mexico.
Heliyon
|July 24, 2023
概括
我们开发了一个新的解调算法,使用复杂的富里埃系数进行极化分析. 这种方法可以有效地计算样本延迟,快速轴向和圆性,而无需完全重建穆勒矩阵.
科学领域:
- 光学物理学的光学物理学
- 极极度度测试是指极极度测试的方法.
- 材料的特性 材料的特性
背景情况:
- 在光学和材料科学中,准确地描述极化特性,如延迟,快速轴向和圆性至关重要.
- 传统方法通常涉及复杂的穆勒矩阵重建,这可能是计算密集和耗时的.
- 现有技术在多波长应用中可能存在局限性,或需要特定的光学组件.
研究的目的:
- 介绍一种基于复杂里埃系数的极化分析的新型解调算法.
- 为了证明这个算法的可行性,使用双旋转极化器-分析器极化仪.
- 为了能够有效地计算关键极化参数而无需完全恢复穆勒矩阵.
主要方法:
- 开发一个利用复杂富里埃系数的微积分去调解算法.
- 实验验证使用双旋转极化器-分析器极化仪设置.
- 分析系统的频率响应以提取极化特征.
主要成果:
- 拟议的算法成功计算了样本的总减速,快速轴方向和圆性.
- 该方法避免了需要完全重建穆勒矩阵的需要.
- 实验结果证实了该算法在描述极化阻抗样本方面的能力.
结论:
- 新的解调算法为两极化分析提供了一种高效的方法.
- 该系统的设计,避免延迟,是适合多波长测量相位延迟样本.
- 该技术为描述各种材料的极化特性提供了有价值的工具.
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