离子液体与氯离子的分解:分离阳离子的气相解离和体的热解的综合研究

Taofiq Abdulraheem, Amanda L. Patrick
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引用次数: 0

摘要

随着各种离子液体(ILs)合成的激增和(拟议的)应用的增加,人们越来越关注在环境中发现IL成分和降解产物的可能性,可能是持久性和/或有害污染物。了解IL的稳定性和降解时产生的分解产物将有助于我们更好地了解潜在的环境威胁。虽然稳定性引起了人们对持续环境污染的关注,但它也是ILs在许多应用中的主要优势之一。从了解在极端条件下使用过程中可能起作用的降解机制,到了解在不完全焚烧过程中可能形成的产物,对IL热转化的分子水平的了解也超出了环境问题的考虑。理想情况下,这种分子水平的理解最终可以在合成和实验表征之前更好地预测热稳定性作为结构的函数。本研究采用气相色谱-质谱联用技术研究了9种含氯阴离子和各种n -杂环阳离子的il的热解产物,并将这些结果与各自分离阳离子的单分子气相解离行为进行了比较。通过比较这两种实验方法,可以探索单分子分解途径与双分子分解或转化途径的区别。此外,这些比较揭示了分离阳离子的气相解离,这是一个非常简单的实验,是否可以用来提供对散装热解途径的任何见解。总体趋势、基于类的趋势和特定物种的行为被识别和讨论。这项工作通过研究一系列阳离子,包括那些具有功能化r基团的阳离子,并将大量热解的结果与分离阳离子的碰撞诱导解离的结果相结合,为ILs的热解提供了新的分子见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Decomposition of ionic liquids with chloride anions: A combined study of the gas-phase dissociation of the isolated cations and pyrolysis of the bulk

Decomposition of ionic liquids with chloride anions: A combined study of the gas-phase dissociation of the isolated cations and pyrolysis of the bulk
As the synthesis of diverse ionic liquids (ILs) proliferates and as (proposed) applications increase, there is growing concern about the possibility of finding IL components and degradation products in the environment, possibly as persistent and/or hazardous contaminants. Understanding IL stability and understanding what decomposition products arise when ILs do degrade will help us better understand potential environmental threats. While stability raises concern in terms of persistent environmental pollution, it is also one of the major strengths of ILs toward their many applications. From understanding degradation mechanisms that could be at play during use under extreme conditions to understanding the products that may form during incomplete incineration, a molecular-level understanding of IL thermal transformations is also desirable beyond the environmental concern. Ideally, such a molecular-level understanding could eventually lead to better predictions of thermal stability as a function of structure prior to synthesis and experimental characterization. In this work, the pyrolysis products of nine ILs, each with the chloride anion and various N-heterocyclic cations, were studied by gas chromatography-mass spectrometry and these results were compared to the unimolecular gas-phase dissociation behavior of the respective isolated cations. By comparing these two experimental approaches, differences between unimolecular decomposition pathways and bimolecular decomposition or transformation pathways could be explored. Further, these comparisons shed light on whether gas-phase dissociation of the isolated cation, which is a very straightforward experiment, could be used to provide any insights into bulk pyrolysis pathways. Overall trends, class-based trends, and behaviors specific to only certain species are identified and discussed. This work provides new molecular insights into the pyrolysis of ILs by studying an array of cations, including those with functionalized R-groups, and by integrating results from bulk pyrolysis with those from collision-induced dissociation of the isolated cation.
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