气体在散射介质中的吸收光谱

S. Svanberg
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引用次数: 6

摘要

综述了气体散射介质吸收光谱(GASMAS)这一新领域的研究进展。GASMAS结合了窄带二极管激光光谱学和漫射介质光传播。虽然固体和液体具有广泛的吸收特征,但材料中孔隙和空洞中的自由气体具有尖锐的光谱特征,通常比宿主材料的光谱特征尖锐10,000倍。在材料科学、食品包装、制药和医学领域的许多应用已经得到证实。到目前为止,对分子氧和水蒸气的研究分别在760纳米和935纳米左右。液态水是许多天然物质(如组织)的重要组成部分,对这种波长的吸收很低,允许传播。聚苯乙烯泡沫、木材、水果、食品、药片和人类鼻窦腔都被研究过。气体在多孔介质中的传输可以很容易地研究,首先将材料浸入,例如,纯氮中,然后观察含有氧气的正常空气重新侵入材料的速率。通过用氮气冲洗鼻腔,可以测量鼻窦结缔组织通道的电导。也可以研究其他动态过程,如物料的干燥。这些技术也已扩展到遥感应用(激光雷达- gasmas)。
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Gas in scattering media absorption spectroscopy - GASMAS
An overview of the new field of Gas in Scattering Media Absorption Spectroscopy (GASMAS) is presented. GASMAS combines narrow-band diode-laser spectroscopy with diffuse media optical propagation. While solids and liquids have broad absorption features, free gas in pores and cavities in the material is characterized by sharp spectral signatures, typically 10,000 times sharper than those of the host material. Many applications in materials science, food packaging, pharmaceutics and medicine have been demonstrated. So far molecular oxygen and water vapour have been studied around 760 and 935 nm, respectively. Liquid water, an important constituent in many natural materials, such as tissue, has a low absorption at such wavelengths, allowing propagation. Polystyrene foam, wood, fruits, food-stuffs, pharmaceutical tablets, and human sinus cavities have been studied. Transport of gas in porous media can readily be studied by first immersing the material in, e.g., pure nitrogen, and then observing the rate at which normal air, containing oxygen, reinvades the material. The conductance of the sinus connective passages can be measured in this way by flushing the nasal cavity with nitrogen. Also other dynamic processes such as drying of materials can be studied. The techniques have also been extended to remote-sensing applications (LIDAR-GASMAS).
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