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用于组织成像和生物传感的背向散射 Mueller 矩阵偏振术的复杂空间照明方案优化。

Complex Spatial Illumination Scheme Optimization of Backscattering Mueller Matrix Polarimetry for Tissue Imaging and Biosensing.

机构信息

Guangdong Research Center of Polarization Imaging and Measurement Engineering Technology, Shenzhen Key Laboratory for Minimal Invasive Medical Technologies, Institute of Biopharmaceutical and Health Engineering, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen 518055, China.

Department of Engineering Science, University of Oxford, Parks Road, Oxford OX1 3PJ, UK.

出版信息

Biosensors (Basel). 2024 Apr 22;14(4):208. doi: 10.3390/bios14040208.

Abstract

Polarization imaging and sensing techniques have shown great potential for biomedical and clinical applications. As a novel optical biosensing technology, Mueller matrix polarimetry can provide abundant microstructural information of tissue samples. However, polarimetric aberrations, which lead to inaccurate characterization of polarization properties, can be induced by uneven biomedical sample surfaces while measuring Mueller matrices with complex spatial illuminations. In this study, we analyze the detailed features of complex spatial illumination-induced aberrations by measuring the backscattering Mueller matrices of experimental phantom and tissue samples. We obtain the aberrations under different spatial illumination schemes in Mueller matrix imaging. Furthermore, we give the corresponding suggestions for selecting appropriate illumination schemes to extract specific polarization properties, and then provide strategies to alleviate polarimetric aberrations by adjusting the incident and detection angles in Mueller matrix imaging. The optimized scheme gives critical criteria for the spatial illumination scheme selection of non-collinear backscattering Mueller matrix measurements, which can be helpful for the further development of quantitative tissue polarimetric imaging and biosensing.

摘要

偏振成像和传感技术在生物医学和临床应用中显示出巨大的潜力。穆勒矩阵偏振测量作为一种新型的光学生物传感技术,可以提供组织样本丰富的微结构信息。然而,在对具有复杂空间照明的穆勒矩阵进行测量时,不均匀的生物医学样本表面会导致偏振特性的不准确描述,从而产生偏振像差。在这项研究中,我们通过测量实验性的体模和组织样本的背向散射穆勒矩阵,分析了复杂空间照明诱导的像差的详细特征。我们得到了穆勒矩阵成像中不同空间照明方案下的像差。此外,我们为选择适当的照明方案以提取特定的偏振特性提供了建议,然后通过调整穆勒矩阵成像中的入射和检测角度来提供减轻偏振像差的策略。优化方案为非共线背向散射穆勒矩阵测量的空间照明方案选择提供了关键标准,这有助于定量组织偏振成像和生物传感的进一步发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e2b/11048429/c00acfe8a49f/biosensors-14-00208-g001.jpg

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