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Near Diffraction limited mid-IR Spectromicroscopy, Using Frequency Upconversion

机译:使用频率上转换,近衍射受限的中红外光谱

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Mid-infrared microscopy and spectroscopy is interesting due to its medical, biological and chemical applications. Spectromicroscopy can be used for histopathology, sample analysis and diagnosis. The ability to do spectromicroscopy in the 2.5 to 4.5 μm wavelength range where many organic molecules have their fundamental vibrations, with the addition of sufficient spectroscopic resolution to resolve these bands, can e.g. potentially allow for diagnostics without the need for staining of the sample. On a longer timeframe, mid-IR spectromicroscopy has the potential for in-vivo diagnostics, combining morphological and spectral imaging. Recent developments in nonlinear frequency upconversion, have demonstrated the potential to perform both imaging and spectroscopy in the mid-IR range at unparalleled low levels of illumination, the low upconversion detector noise being orders of magnitude below competing technologies. With these applications in mind, we have incorporated microscopy optics into an image upconversion system, achieving near diffraction limited spatial resolution in the 3 μm range. Spectroscopic information is further acquired by appropriate control of the phase match condition of the upconversion process. Multispectral images for a region of interest can be obtained by XY-scanning this region of interest within the field of view of the mid-IR upconversion system. Thus, the whole region of interest can be imaged with all available converter wavelengths, and the spectral representation becomes equal for all points in the image. In addition, the range of converted/imaged wavelengths can be tuned continuously by changing the temperature of the crystal, or discretely by using a different poling channel in the PPLN crystal.
机译:由于其医学,生物和化学应用,中红外显微镜和光谱学很有趣。光谱显微镜可用于组织病理学,样品分析和诊断。在2.5到4.5μm波长范围内进行光谱显微镜检查的能力,例如,许多有机分子会发生基本振动,并添加足够的光谱分辨率来分辨这些谱带。可能无需进行样品染色即可进行诊断。在更长的时间范围内,中红外光谱显微镜有望结合形态学和光谱成像技术进行体内诊断。非线性频率上转换的最新进展表明,在无与伦比的低照度下,在中红外范围内执行成像和光谱分析的潜力,低上转换检测器的噪声比竞争技术低几个数量级。考虑到这些应用,我们已经将显微光学系统整合到图像上转换系统中,在3μm范围内实现了近衍射受限的空间分辨率。通过适当地控制上转换过程的相位匹配条件,进一步获取光谱信息。感兴趣区域的多光谱图像可以通过在中红外上转换系统的视场内对感兴趣区域进行XY扫描而获得。因此,可以用所有可用的转换器波长对整个感兴趣区域成像,并且光谱表示对于图像中的所有点都相等。另外,可以通过改变晶体的温度连续地调整转换/成像波长的范围,或者通过在PPLN晶体中使用不同的极化通道来离散地调整转换/成像波长的范围。

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