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The competition between hydrogen bonding and chemical change in carbohydrate nanoparticles

机译:碳水化合物纳米颗粒中氢键与化学变化之间的竞争

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Broad band Fourier transform infrared spectroscopy was used to study the competition between hydrogen bonding and conformational and chemical changes in molecular nanoparticles. Particles of small carbohydrates (dihydroxyacetone, glyceraldehyde, fructose, and glucose) with sizes between 20 and 100 nm served as model systems. The variation of the preparation conditions allowed to control the chemical composition of the particles. For dihydroxyacetone, the particle generation in an electrospray is accompanied by the formation of intermolecular hemiketals. In contrast, particles generated directly from the vapor phase in a collisional cooling cell consist exclusively of the monomeric form. Quantum chemical simulations demonstrate that conformational changes upon particle formation can be understood to a good approximation on a molecular level. In contrast to that, the characteristic band shape observed for all carbohydrates studied is determined by the interaction of the whole ensemble of OH-oscillators. These contributions could be described within a continuum model. (C) 2002 American Institute of Physics. [References: 65]
机译:宽带傅里叶变换红外光谱用于研究氢键与分子纳米粒子中构象和化学变化之间的竞争。模型大小为20至100 nm之间的小碳水化合物(二羟基丙酮,甘油醛,果糖和葡萄糖)的颗粒。制备条件的变化允许控制颗粒的化学组成。对于二羟基丙酮,电喷雾中的颗粒生成伴随着分子间半缩酮的形成。相反,在碰撞冷却室中直接从气相产生的颗粒仅由单体形式组成。量子化学模拟表明,粒子形成后的构象变化可以在分子水平上很好地理解。与此相反,观察到的所有碳水化合物所观察到的特征谱带形状是由OH振荡器整体的相互作用决定的。这些贡献可以在连续模型中描述。 (C)2002美国物理研究所。 [参考:65]

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