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A molecular picture of surface interactions of organic compounds on prevalent indoor surfaces: limonene adsorption on SiO2

机译:常见室内表面上有机化合物表面相互作用的分子图:柠檬烯在SiO2上的吸附

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摘要

Indoor surfaces are often coated with organic compounds yet a molecular understanding of what drives these interactions is poorly understood. Herein, the adsorption and desorption of limonene, an organic compound found in indoor environments, on hydroxylated silica (SiO2) surfaces, used to mimic indoor glass surfaces, is investigated by combining vibrational spectroscopy, atomistic computer simulations and kinetic modeling. Infrared spectroscopy shows the interaction involves hydrogen-bonding between limonene and surface O–H groups. Atomistic molecular dynamics (MD) simulations confirm the existence of π-hydrogen bonding interactions, with one or two hydrogen bonds between the silica O–H groups and the carbon–carbon double bonds, roughly one third of the time. The concentration and temperature dependent adsorption/desorption kinetics as measured by infrared spectroscopy were reproduced with a kinetic model, yielding the adsorption enthalpy of ∼55 kJ mol–1, which is consistent with the value derived from the MD simulations. Importantly, this integrated experimental, theoretical and kinetic modeling study constitutes a conceptual framework for understanding the interaction of organic compounds with indoor relevant surfaces and thus provides important insights into our understanding of indoor air chemistry and indoor air quality.
机译:室内表面通常涂有有机化合物,但对驱动这些相互作用的分子了解却很少。在此,通过结合振动光谱,原子计算机模拟和动力学建模,研究了柠檬烯(一种在室内环境中发现的有机化合物)在模拟室内玻璃表面的羟基化二氧化硅(SiO2)表面上的吸附和解吸。红外光谱显示相互作用涉及柠檬烯与表面OH基团之间的氢键。原子分子动力学(MD)模拟证实存在π-氢键相互作用,二氧化硅O–H基团与碳–碳双键之间存在一个或两个氢键,大约占三分之一。通过动力学模型再现了红外光谱测量的浓度和温度相关的吸附/解吸动力学,得到的吸附焓约为55 kJ mol -1 ,与MD值一致模拟。重要的是,这项综合的实验,理论和动力学建模研究构成了一个概念框架,用于理解有机化合物与室内相关表面的相互作用,从而为我们对室内空气化学和室内空气质量的理解提供了重要的见识。

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