Malekzadeh-Najafabadi Jaber, Prakash Jaya, Ntziachristos Vasilis
Chair of Biological Imaging, Technical University of Munich, Munich, Germany.
Institute of Biological and Medical Imaging, Helmholtz Zentrum München, Neuherberg, Germany.
J Biophotonics. 2018 Jan;11(1). doi: 10.1002/jbio.201600310. Epub 2017 Oct 4.
Optoacoustic (photoacoustic) imaging assumes that the detected signal varies linearly with laser energy. However, nonlinear intensity responses as a function of light fluence have been suggested in optoacoustic microscopy, that is, within the first millimeter of tissue. In this study, we explore the presence of nonlinearity deeper in tissue (~4 mm), as it relates to optoacoustic mesoscopy, and investigate the fluence required to delineate a switch from linear to nonlinear behavior. Optoacoustic signal nonlinearity is studied for different materials, different wavelengths and as a function of changes in the scattering and absorption coefficient of the medium imaged. We observe fluence thresholds in the mJ/cm range and preliminary find that different materials may exhibit different nonlinearity patterns. We discuss the implications of nonlinearity in relation to image accuracy and quantification in optoacoustic tomography.
光声成像假定检测到的信号与激光能量呈线性变化。然而,在光声显微镜中,即在组织的第一毫米范围内,已经有人提出作为光通量函数的非线性强度响应。在本研究中,我们探讨了组织更深层(约4毫米)中非线性的存在情况,因为这与光声介观成像有关,并研究了描绘从线性行为向非线性行为转变所需的光通量。针对不同材料、不同波长以及作为所成像介质散射和吸收系数变化的函数,研究了光声信号的非线性。我们观察到毫焦每平方厘米范围内的光通量阈值,并初步发现不同材料可能呈现不同的非线性模式。我们讨论了非线性对于光声断层成像中图像准确性和定量分析的影响。