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离子液体中弱配位金属的热物理研究。

A thermophysical investigation of weakly coordinated metals in ionic liquids.

作者信息

Clarke Coby J, Clayton Thomas, Palmer Matthew J, Lovelock Kevin R J, Licence Peter

机构信息

GSK Carbon Neutral Laboratory, School of Chemistry, University of Nottingham Nottingham UK

Department of Chemistry, University of Reading Reading UK.

出版信息

Chem Sci. 2024 Jul 31;15(34):13832-13840. doi: 10.1039/d4sc03588g. eCollection 2024 Aug 28.

Abstract

Ionic liquids can solvate metals without strongly coordinating them, which gives a rare opportunity to probe the complexity of weakly coordinated metals through characterisation of liquid properties. In this work we use bis(trifluoromethanesulfonyl)imide ( bistriflimide; [NTf]) anions to prepare weakly coordinated metal containing ionic liquids (MILs) that are highly versatile because they are reactive with readily substituted ligands. Weakly coordinated metals are more than highly active catalysts. They are primed to create dynamic systems that are useful in other areas such as battery electrolytes, soft materials, and separations. However, very little is known about the properties of ionic liquids with weakly coordinated metals, so we present a wide scope analysis of nineteen 1-alkyl-3-methylimidazolium bistriflimide ILs with five different M[NTf] salts (M = Li, Mg, Zn, Co, Ni) in variable concentration to understand how metal cations influence thermophysical properties. We investigate short- and long-term thermal stability, decomposition kinetics, and decomposition mechanisms which provides operating windows and knowledge on how to improve stability. In particular, we find that all metals catalyse the elimination decomposition process, which severely compromises thermal stability. Alongside this, we present a detailed analysis of viscosities, densities, and heat capacities, the latter of which revealed that bistriflimide metal ILs are prone to drawing water from the air to form strong hydration spheres. Thermal parameters are affected to varying degrees, but desorption is possible under elevated temperatures - further justifying the need to know upper temperature limits. Altogether, this work provides a broad and methodical study to help understand solvent-solute interactions and thus design better systems for emerging applications that utilise weakly coordinated metals.

摘要

离子液体能够溶剂化金属,却不会与它们强烈配位,这为通过表征液体性质来探究弱配位金属的复杂性提供了难得的机会。在这项工作中,我们使用双(三氟甲磺酰)亚胺(双三氟甲磺酰亚胺;[NTf₂])阴离子来制备含弱配位金属的离子液体(MILs),这些离子液体具有高度的通用性,因为它们能与易于取代的配体发生反应。弱配位金属不仅仅是高活性催化剂。它们有望构建在电池电解质、软材料和分离等其他领域有用的动态体系。然而,对于含弱配位金属的离子液体的性质,人们了解得非常少,因此我们对19种1-烷基-3-甲基咪唑鎓双三氟甲磺酰亚胺离子液体与五种不同的M[NTf₂]盐(M = Li、Mg、Zn、Co、Ni)在不同浓度下进行了广泛的分析,以了解金属阳离子如何影响热物理性质。我们研究了短期和长期的热稳定性、分解动力学以及分解机制,这为操作窗口以及如何提高稳定性提供了相关知识。特别地,我们发现所有金属都会催化消除分解过程,这严重损害了热稳定性。与此同时,我们对粘度、密度和热容量进行了详细分析,其中热容量分析表明双三氟甲磺酰亚胺金属离子液体容易从空气中吸水形成强水合球。热参数受到不同程度的影响,但在高温下可以解吸——这进一步证明了了解温度上限的必要性。总之,这项工作提供了一项广泛而系统的研究,有助于理解溶剂 - 溶质相互作用,从而为利用弱配位金属的新兴应用设计出更好的体系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c65/11351778/0f1a639ee37c/d4sc03588g-f1.jpg

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