Huynh Thai L Y, Poiroux Kaitlyn, O'Brien Richard A, West Kevin N, Davis James H, West Christy Wheeler
Department of Chemical and Biomolecular Engineering, University of South Alabama , Mobile, Alabama 36688, United States.
Department of Chemistry, University of South Alabama , Mobile, Alabama 36688, United States.
J Phys Chem B. 2016 Feb 25;120(7):1330-5. doi: 10.1021/acs.jpcb.6b00747. Epub 2016 Feb 17.
Quaternary ammonium salts are widely used in consumer products and industrial processes, where their instability at elevated temperatures limits their range of applications. In this work, the thermal behavior of a new class of quaternary ammonium salts was investigated using differential scanning calorimetry. These salts contain a sulfur atom in each chain at the fourth position from the central nitrogen and are thus termed thiaquats. The temperatures at which these salts melt and thermally degrade were determined, and enthalpies and entropies of fusion were evaluated. Their melting points increase with chain lengths, in contrast to the behavior of traditional quaternary ammonium salts. Furthermore, they exhibit enthalpies and entropies of fusion significantly lower than corresponding tetraalkyl analogues. These trends provide physical insight into the molecular-level behavior of these salts, suggesting that they do not fully dissociate upon melting. The thiaquats also exhibit thermal stability to markedly higher temperatures than traditional quaternary ammonium bromides, a phenomenon that can be explained in by strong pairing between the quaternary cation and bromide anion, which inhibits possible decomposition mechanisms. This enhanced thermal stability may enable applications of these salts in processes where traditional salts are not viable, such as phase-transfer-catalyzed systems performed at elevated temperatures.
季铵盐广泛应用于消费品和工业生产过程中,但其在高温下的不稳定性限制了它们的应用范围。在这项工作中,使用差示扫描量热法研究了一类新型季铵盐的热行为。这些盐在距中心氮原子第四个位置的每条链中都含有一个硫原子,因此被称为硫杂季铵盐。测定了这些盐的熔点和热降解温度,并评估了熔化焓和熔化熵。与传统季铵盐的行为相反,它们的熔点随链长增加而升高。此外,它们的熔化焓和熔化熵明显低于相应的四烷基类似物。这些趋势为这些盐的分子水平行为提供了物理见解,表明它们在熔化时不会完全解离。硫杂季铵盐还表现出比传统溴化季铵盐更高的热稳定性,这一现象可以通过季铵阳离子和溴离子之间的强配对来解释,这种配对抑制了可能的分解机制。这种增强了的热稳定性可能使这些盐能够应用于传统盐无法适用的过程,例如在高温下进行的相转移催化体系。