E-FISH 信号的极化特性以及电场矢量同步测量的优化

Xinlei Zheng, Zheng Zhao, Haotian Zheng, Zongze Huang, Zihan Sun, Jiangtao Li
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摘要

基于电场诱导二次谐波(E-FISH)方法的电场测量已被广泛应用于各种研究中。大多数研究通常分别测量电场的两个分量。虽然也有人提议同时测量电场矢量,但两个相应的 E-FISH 信号的不平衡限制了其应用。此外,E-FISH 信号的极化与外部电场方向之间的关系仍不清楚。本文假设探针光束极化和外电场方向任意,推导出了 E-FISH 信号两个分量的极化和功率的一般表达式。理论结果表明,E-FISH 信号的极化沿相互作用长度变化。在任意电场分布的情况下,最终信号的极化是椭圆极化,与探针光束的极化相关,而探针光束的极化偏离了通常假定的与外电场一致的极化。如果探针光束的极化与轴线不平行,则每个信号分量的功率由外电场的两个分量决定,这为同时测量电场矢量奠定了基础。这一理论预测随后得到了实验结果的验证。最后,功率图表明,在测量未知电场矢量时,探针光束的最佳偏振角为 45° 或 135°,以获得平衡的信号功率。根据理论关系,可以同时获得电场的两个分量。
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Polarization properties of E-FISH signals and optimization of simultaneous measurement of electric field vectors
Electric field measurements based on the electric field induced second harmonic (E-FISH) method have been employed in a wide range of studies. Most studies typically measure two components of the electric field separately. Although there have been proposals for the simultaneous measurement of electric field vectors, the imbalance of the two corresponding E-FISH signals has limited its application. Furthermore, the relationship between the polarization of the E-FISH signal and the direction of external electric field remains unclear. In this paper, the general expressions for the polarization and power of both components of E-FISH signals are derived, assuming arbitrary probe beam polarization and external electric field direction. The theoretical results indicate that the polarization of E-FISH signals varies along the interaction length. The final signal’s polarization is elliptically polarized for arbitrary electric field distribution and is correlated with the polarization of the probe beam, which deviates from what is commonly assumed to be consistent with the external electric field. If the polarization of the probe beam is not parallel to the axes, the power of each signal component is determined by both components of the external electric field, which lays the foundation for the simultaneous measurement of electric field vectors. This theoretical prediction is subsequently validated by experimental results. Finally, the power maps suggest that the optimal polarization angle of the probe beam is 45° or 135° to achieve a balanced signal power when measuring an unknown electric field vector. Both components of the electric field can be simultaneously obtained according to the theoretical relationship.
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