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用于在背散射几何结构中测定手性混浊介质中旋光性的穆勒矩阵方法。

Mueller matrix approach for determination of optical rotation in chiral turbid media in backscattering geometry.

作者信息

Manhas S, Swami M K, Buddhiwant P, Ghosh N, Gupta P K, Singh J

出版信息

Opt Express. 2006 Jan 9;14(1):190-202. doi: 10.1364/opex.14.000190.

Abstract

For in vivo determination of optically active (chiral) substances in turbid media, like for example glucose in human tissue, the backscattering geometry is particularly convenient. However, recent polarimetric measurements performed in the backscattering geometry have shown that, in this geometry, the relatively small rotation of the polarization vector arising due to the optical activity of the medium is totally swamped by the much larger changes in the orientation angle of the polarization vector due to scattering. We show that the change in the orientation angle of the polarization vector arises due to the combined effect of linear diattenuation and linear retardance of light scattered at large angles and can be decoupled from the pure optical rotation component using polar decomposition of Mueller matrix. For this purpose, the method developed earlier for polar decomposition of Mueller matrix was extended to incorporate optical rotation in the medium. The validity of this approach for accurate determination of the degree of optical rotation using the Mueller matrix measured from the medium in both forward and backscattering geometry was tested by conducting studies on chiral turbid samples prepared using known concentration of scatterers and glucose molecules.

摘要

对于在浑浊介质中对旋光性(手性)物质进行体内测定,例如人体组织中的葡萄糖,背散射几何结构特别方便。然而,最近在背散射几何结构中进行的偏振测量表明,在这种几何结构中,由于介质的旋光性引起的偏振矢量相对较小的旋转完全被由于散射导致的偏振矢量取向角的大得多的变化所淹没。我们表明,偏振矢量取向角的变化是由于大角度散射光的线性二向色性和线性延迟的综合作用引起的,并且可以使用穆勒矩阵的偏振分解从纯旋光分量中解耦出来。为此,先前开发的用于穆勒矩阵偏振分解的方法被扩展以纳入介质中的旋光性。通过对使用已知浓度的散射体和葡萄糖分子制备的手性浑浊样品进行研究,测试了这种方法在使用从正向和背散射几何结构中的介质测量的穆勒矩阵准确测定旋光度方面的有效性。

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