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斯托克斯矢量轨迹在庞加莱球面上揭示的散射和双折射的作用。

Role of scattering and birefringence in phase retardation revealed by locus of Stokes vector on Poincaré sphere.

机构信息

University of Oulu, Optoelectronics and Measurement Techniques Research Unit, Oulu, Finland.

VTT Technical Research Centre of Finland, Oulu, Finland.

出版信息

J Biomed Opt. 2020 May;25(5):1-13. doi: 10.1117/1.JBO.25.5.057001.

Abstract

SIGNIFICANCE

Biological tissues are typically characterized by high anisotropic scattering and may also exhibit linear form birefringence. Both scattering and birefringence bias the phase shift between transverse electric field components of polarized light. These phase alterations are associated with particular structural malformations in the tissue. In fact, the majority of polarization-based techniques are unable to distinguish the nature of the phase shift induced by birefringence or scattering of light.

AIM

We explore the distinct contributions of scattering and birefringence in the phase retardation of circularly polarized light propagated in turbid tissue-like scattering medium.

APPROACH

The circularly polarized light in frame of Stokes polarimetry approach is used for the screening of biotissue phantoms and chicken skin samples. The change of optical properties in chicken skin is accomplished by optical clearing, which reduces scattering, and mechanical stretch, which induces birefringence. The change of optical properties of skin tissue is confirmed by spectrophotometric measurements and second-harmonic generation imaging.

RESULTS

The contributions of scattering and birefringence in the phase retardation of circularly polarized light propagated in biological tissues are distinguished by the locus of the Stokes vector mapped on the Poincaré sphere. The phase retardation of circularly polarized light due to scattering alterations is assessed. The value of birefringence in chicken skin is estimated as 0.3  ×  10, which agrees with alternative studies. The change of birefringence of skin tissue due to mechanical stretch in the order of 10 is detected.

CONCLUSIONS

While the polarimetric parameters on their own do not allow distinguishing the contributions of scattering and birefringence, the resultant Stokes vector trajectory on the Poincaré sphere reveals the role of scattering and birefringence in the total phase retardation. The described approach, applied independently or in combination with Mueller polarimetry, can be beneficial for the advanced characterization of various types of malformations within biological tissues.

摘要

意义

生物组织通常具有各向异性散射的特点,也可能表现出线性形式的双折射。散射和双折射都会使偏振光的横向电场分量之间的相移产生偏差。这些相位变化与组织中的特定结构畸形有关。事实上,大多数基于偏振的技术无法区分由双折射或光散射引起的相移的性质。

目的

我们探讨了圆偏振光在类混浊散射介质中传播时的散射和双折射对相位延迟的不同贡献。

方法

我们使用斯托克斯偏振测量法中的圆偏振光来筛选生物组织模型和鸡皮样本。鸡皮的光学特性变化是通过光学透明化实现的,这降低了散射,通过机械拉伸诱导双折射。通过分光光度测量和二次谐波成像来确认皮肤组织的光学特性变化。

结果

通过在庞加莱球上绘制斯托克斯向量的轨迹,可以区分圆偏振光在生物组织中传播时的散射和双折射对相位延迟的贡献。评估了由于散射变化引起的圆偏振光的相位延迟。估计鸡皮的双折射值为 0.3×10,与其他研究结果一致。检测到由于机械拉伸引起的皮肤组织双折射的变化约为 10。

结论

虽然偏振参数本身无法区分散射和双折射的贡献,但庞加莱球上的斯托克斯向量轨迹揭示了散射和双折射在总相位延迟中的作用。所描述的方法,无论是单独应用还是与 Mueller 偏振测量法结合应用,都可以有益于对生物组织中各种类型的畸形进行高级特征描述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12d8/7238295/537c5111a646/JBO-025-057001-g001.jpg

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