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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >In Situ Nondestructive Analysis of Kalanchoe pinnata Leaf Surface Structure by Polarization-Modulation Infrared Reflection Absorption Spectroscopy
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In Situ Nondestructive Analysis of Kalanchoe pinnata Leaf Surface Structure by Polarization-Modulation Infrared Reflection Absorption Spectroscopy

机译:偏振调制红外反射吸收光谱法原位无损分析Kalanchoe Pinnata叶片表面结构

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摘要

The outermost surface of the leaves of land plants is covered with a lipid membrane called the cuticle that protects against various stress factors. Probing the molecular-level structure of the intact cuticle is highly desirable for understanding its multifunctional properties. We report the in situ characterization of the surface structure of Kalanchoe pinnata leaves using polarization-modulation infrared reflection absorption spectroscopy (PM-IRRAS). Without sample pretreatment, PM-IRRAS measures the IR spectra of the leaf cuticle of a potted K. pinnata plant. The peak position of the CH2-related modes shows that the cuticular waxes on the leaf surface are mainly crystalline, and the alkyl chains are highly packed in an all-trans zigzag conformation. The surface selection rule of PM-IRRAS revealed the average orientation of the cuticular molecules, as indicated by the positive and negative signals of the IR peaks. This unique property of PM-IRRAS revealed that the alkyl chains of the waxes and the main chains of polysaccharides are oriented almost perpendicular to the leaf surface. The nondestructive, background-free, and environmental gas-free nature of PM-IRRAS allows the structure and chemistry of the leaf cuticle to be studied directly in its native environment.
机译:陆地植物叶子的最外面覆盖着称为角质层的脂质膜,可防止各种应力因子。探测完整角质层的分子水平结构非常希望理解其多功能性质。我们通过偏振调制红外反射吸收光谱(PM-IRRAS)向kalanchoe Pinnata叶片表面结构的原位表征。没有样品预处理,PM-IRRAS测量盆栽K.Pinnata植物的叶片角质层的IR光谱。 CH2相关模式的峰位置表明,叶片表面上的内蜡主要是结晶,并且烷基链在全型曲折构象中高度填充。 PM-Irras的表面选择规律揭示了切割分子的平均取向,如IR峰的正和负信号所示。 PM-IrrAs的这种独特性质显示出蜡的烷基链和多糖的主链几乎垂直于叶片表面取向。 PM-Irras的无损,无论自由和环境无气质性质允许叶角质层的结构和化学直接在其本地环境中进行。

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