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Spectroscopic imaging of biomaterials and biological systems with FTIR microscopy or with quantum cascade lasers

机译:使用FTIR显微镜或量子级联激光对生物材料和生物系统进行光谱成像

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摘要

Spectroscopic imaging of biomaterials and biological systems has received increased interest within the last decade because of its potential to aid in the detection of disease using biomaterials/biopsy samples and to probe the states of live cells in a label-free manner. The factors behind this increased attention include the availability of improved infrared microscopes and systems that do not require the use of a synchrotron as a light source, as well as the decreasing costs of these systems. This article highlights the current technical challenges and future directions of mid-infrared spectroscopic imaging within this field. Specifically, these are improvements in spatial resolution and spectral quality through the use of novel added lenses and computational algorithms, as well as quantum cascade laser imaging systems, which offer advantages over traditional Fourier transform infrared systems with respect to the speed of acquisition and field of view. Overcoming these challenges will push forward spectroscopic imaging as a viable tool for disease diagnostics and medical research. >Graphical abstractAbsorbance images of a biopsy obtained using an FTIR imaging microscope with and without an added lens, and also using a QCL microscope with high-NA objective.
机译:在过去的十年中,生物材料和生物系统的光谱成像受到了越来越多的关注,因为它具有使用生物材料/活检样本帮助疾病检测并以无标记方式探测活细胞状态的潜力。引起更多关注的因素包括可获得改进的红外显微镜和不需要同步加速器作为光源的系统,以及这些系统的成本降低。本文重点介绍了该领域中中红外光谱成像的当前技术挑战和未来方向。具体来说,这些是通过使用新型添加的透镜和计算算法以及量子级联激光成像系统来改善空间分辨率和光谱质量的方法,相对于传统的傅立叶变换红外系统,其在获取速度和视场方面均具有优势。视图。克服这些挑战将推动光谱成像成为疾病诊断和医学研究的可行工具。 <!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> >图形摘要<!-图/图形|无花果/替代品/图形模式=“锚定” m1-> <!-标题a7->使用带有和不带有附加透镜的FTIR成像显微镜以及QCL获得的活检的吸光度图像高NA物镜的显微镜。

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