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Advances in photo-thermal infrared imaging microspectroscopy

机译:光热红外成像微型光谱检查的进步

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There is a growing need for chemical imaging techniques in many fields of science and technology: forensics, materials science, pharmaceutical and chemical industries, just to name a few. While FTIR micro-spectroscopy is commonly used, its practical resolution limit of about 20 microns or more is often insufficient. Raman micro-spectroscopy provides better spatial resolution (~1 micron), but is not always practical because of samples exhibiting fluorescence or low Raman scattering efficiency. We are developing a non-contact and non-destructive technique we call photo-thermal infrared imaging spectroscopy (PT-IRIS). It involves photo-thermal heating of the sample with a tunable quantum cascade laser and measuring the resulting increase in thermal emission with an infrared detector. Photo-thermal emission spectra resemble FTIR absorbance spectra and can be acquired in both stand-off and microscopy configurations. Furthermore, PT-IRIS allows the acquisition of absorbance-like photo-thermal spectra in a reflected geometry, suitable for field applications and for in-sttu study of samples on optically IR-opaque substrates (metals, fabrics, paint, glass etc.). Conventional FTIR microscopes in reflection mode measure the reflectance spectra which are different from absorbance spectra and are usually not catalogued in FTIR spectral libraries. In this paper, we continue developing this new technique. We perform a series of numerical simulations of the laser heating of samples during photo-thermal microscopy. We develop parameterized formulas to help the user pick the appropriate laser illumination power. We also examine the influence of sample geometry on spectral signatures. Finally, we measure and compare photo-thermal and reflectance spectra for two test samples.
机译:在许多科学和技术领域中越来越需要化学成像技术:取证,材料科学,制药和化学工业,只是为了命名几个。虽然通常使用FTIR微光谱,但其实际分辨率约为20微米或更高通常不足。拉曼微光谱提供更好的空间分辨率(〜1微米),但由于具有荧光或低拉曼散射效率的样品并不总是实用。我们正在开发一种非接触和非破坏性技术,我们呼叫光热红外成像光谱(PT-IRIS)。它涉及具有可调谐量子级联激光器的样品的光热加热,并测量用红外探测器的热发射的产生增加。光 - 热发射光谱类似于FTIR吸光度光谱,可以在脱扣和显微镜配置中获取。此外,Pt-虹膜允许在反射的几何形状中获取吸光度状光热光谱,适用于场应用和在光学IR-OPAQUE基板上的样品(金属,织物,涂料,玻璃等)的样品研究中的STTU研究。反射模式中的常规FTIR显微镜测量与吸光光谱不同的反射光谱,通常不会在FTIR光谱库中编目。在本文中,我们继续开发这种新技术。在光热显微镜下,我们执行一系列样品激光加热的数值模拟。我们开发参数化的公式,以帮助用户选择适当的激光照明功率。我们还研究样品几何对光谱签名的影响。最后,我们测量和比较两个测试样品的光热和反射光谱。

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