首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Thermal Resilience of Imidazolium-Based Ionic Liquids-Studies on Short- and Long-Term Thermal Stability and Decomposition Mechanism of 1-Alkyl-3-methylimidazolium Halides by Thermal Analysis and Single-Photon Ionization Time-of-Flight Mass Spectrometry
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Thermal Resilience of Imidazolium-Based Ionic Liquids-Studies on Short- and Long-Term Thermal Stability and Decomposition Mechanism of 1-Alkyl-3-methylimidazolium Halides by Thermal Analysis and Single-Photon Ionization Time-of-Flight Mass Spectrometry

机译:基于Imidazolium的离子液体的热恢复 - 通过热分析和单光子电离飞行时间质谱法测定1-烷基-3-甲基咪唑卤化物的短期和长期热稳定性和分解机理的研究

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Ionic liquids are often considered as green alternatives of volatile organic solvents. The thermal behavior of the ionic liquids is relevant for a number of emerging large-scale applications at elevated temperature. Knowledge about the degradation products is indispensable for treatment and recycling of the used ionic liquids. The objective of this paper was an investigation of the short- and long-term stability of several 1-alkyl-3-methylimidazolium halides, determination of the degradation products, and the elucidation of their decomposition patterns and structure-stability relations. Short-term stability and mechanism of thermal degradation were investigated by a self-developed, innovative thermal analysis single-photon ionization timeof-flight mass spectrometry device with Skimmer coupling. The applied technology provides real-time monitoring of the forming species and allows tracing their change during the course of the decomposition. Therein, the almost fragment-free soft ionization with vacuum ultraviolet photons plays a crucial role. We have detected unfragmented molecules whose formation was only assumed by electron ionization. Nevertheless, the main decomposition products of the selected ionic liquids were alkyl imidazoles, alkenes, alkyl halides, and hydrogen halides. From the decomposition products, we have deduced the fragmentation patterns and discussed their interrelation with the length of the alkyl chain and the type of the halide anion. Our results did not suggest the evaporation of the investigated ionic liquids prior to their decomposition under atmospheric conditions. Long-term thermal stability and applicability were determined based on thermogravimetric analysis evaluated with a kinetic model. Thus, the time-dependent maximum operation temperature (MOT) for the respective ionic liquids has been calculated. As a rule, the short-term stability overestimates the long-term decomposition temperatures; the calculated MOT are significantly lower (at least 100 K) than the standardly obtained decomposition temperatures.
机译:离子液体通常被认为是挥发性有机溶剂的绿色替代品。离子液体的热行为在升高温度下具有多种新出现的大型应用。关于降解产物的知识对于使用的离子液体的处理和再循环是必不可少的。本文的目的是研究几种1-烷基-3-甲基咪唑卤化物的短期和长期稳定性,测定降解产物的测定,以及它们分解模式和结构稳定性关系的阐明。通过自发的创新的热分析单光子电离时间飞行质谱装置研究了短期稳定性和热劣化机制,具有撇脱器联接器。应用技术提供了对成形物种的实时监测,并允许在分解过程中追踪其变化。其中,具有真空紫外光子的几乎碎片的软电离起到至关重要的作用。我们已经检测到未被电子电离假设的形成的未经用的分子。然而,所选离子液体的主要分解产物是烷基咪唑,烯烃,烷基卤化物和卤化氢。从分解产物中,我们推导出碎片模式并与烷基链的长度和卤化物阴离子的类型讨论它们的相互关联。我们的结果并未表明在大气条件下在分解之前蒸发研究的离子液体。基于用动力学模型评价的热重分析确定了长期热稳定性和适用性。因此,已经计算了各种离子液体的时间依赖性最大操作温度(MOT)。通常,短期稳定性高估长期分解温度;计算的MOT显着降低(至少100 k),而不是标准获得的分解温度。

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