Qi Ji, Elson Daniel S
Hamlyn Centre for Robotic Surgery, Institute of Global Health Innovation, Imperial College London, Exhibition Road, London, SW7 2AZ, UK.
Department of Surgery and Cancer, Imperial College London, Exhibition Road, London, SW7 2AZ, UK.
J Biophotonics. 2017 Aug;10(8):950-982. doi: 10.1002/jbio.201600152. Epub 2017 May 2.
Polarization is a fundamental property of light and a powerful sensing tool that has been applied to many areas. A Mueller matrix is a complete mathematical description of the polarization characteristics of objects that interact with light, and is known as a transfer function of Stokes vectors which characterise the state of polarization of light. Mueller polarimetric imaging measures Mueller matrices over a field of view and thus allows for visualising the polarization characteristics of the objects. It has emerged as a promising technique in recent years for tissue imaging, improving image contrast and providing a unique perspective to reveal additional information that cannot be resolved by other optical imaging modalities. This review introduces the basis of the Stokes-Mueller formulism, interpretation methods of Mueller matrices into fundamental polarization properties, polarization properties of biological tissues, and considerations in the construction of Mueller polarimetric imaging devices for surgical and diagnostic applications, including primary configurations, optimization procedures, calibration methods as well as the instrument polarization properties of several widely-used biomedical optical devices. The paper also reviews recent progress in Mueller polarimetric endoscopes and fibre Mueller polarimeters, followed by the future outlook in applying the technique to surgery and diagnostics. Tissue polarization properties convey morphological, micro-structural and compositional information of tissue with great potential for label free characterization of tissue pathological changes. Recent progress in tissue polarimetric imaging and polarization resolved endoscopy paved the way for translation of polarimetric imaging to surgery and tissue diagnosis.
偏振是光的一种基本属性,也是一种强大的传感工具,已被应用于许多领域。穆勒矩阵是对与光相互作用的物体偏振特性的完整数学描述,被称为表征光偏振态的斯托克斯矢量的传递函数。穆勒偏振成像可在一个视场内测量穆勒矩阵,从而能够可视化物体的偏振特性。近年来,它已成为一种很有前景的组织成像技术,可提高图像对比度,并提供一个独特的视角来揭示其他光学成像方式无法分辨的额外信息。本综述介绍了斯托克斯 - 穆勒公式体系的基础、将穆勒矩阵解释为基本偏振特性的方法、生物组织的偏振特性,以及构建用于手术和诊断应用的穆勒偏振成像设备时的注意事项,包括主要配置、优化程序、校准方法以及几种广泛使用的生物医学光学设备的仪器偏振特性。本文还综述了穆勒偏振内窥镜和光纤穆勒偏振仪的最新进展,随后展望了该技术在手术和诊断中的应用前景。组织偏振特性可传达组织的形态、微观结构和成分信息,在无标记表征组织病理变化方面具有巨大潜力。组织偏振成像和偏振分辨内窥镜的最新进展为将偏振成像应用于手术和组织诊断铺平了道路。