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模型离子液体电解质中的结构、氢键动力学及相变

Structure, hydrogen bond dynamics and phase transition in a model ionic liquid electrolyte.

作者信息

Khudozhitkov Alexander E, Stange Peter, Stepanov Alexander G, Kolokolov Daniil I, Ludwig Ralf

机构信息

Boreskov Institute of Catalysis, Siberian Branch of Russian Academy of Sciences, Prospekt Akademika Lavrentieva 5, Novosibirsk 630090, Russia.

Novosibirsk State University, Pirogova Street 2, Novosibirsk 630090, Russia.

出版信息

Phys Chem Chem Phys. 2022 Mar 9;24(10):6064-6071. doi: 10.1039/d2cp00452f.

Abstract

We show that solid-state NMR spectroscopy is a suitable method for characterizing the structure, hydrogen bond dynamics and phase transition behavior in protic ionic liquids (PILs). Deuteron line shape and spin relaxation time analysis provide a description of the structural and dynamical heterogeneity in the solid state of the model PIL triethyl ammonium bis(trifluoromethanesulfonyl)amide [TEA][NTf]. Therein, we observed two deuteron quadrupole coupling constant for the ND bond of the TEA cation, indicating differently strong hydrogen bonds to the nitrogen and oxygen atoms of the NTf anion, as we could confirm by DFT calculations. The transition processes in the dynamically heterogeneous phase are characterized by two standard molar enthalpies and thus different stages of melting. We provide geometry, rates and energetics of the cation in the solid and liquid states of the PIL. Comparison with PILs having stronger interacting anions shows higher enthalpy change between the solid and liquid states, lower activation barriers of tumbling motion and higher amplitude of librational motion for the TEA cation in the presence of the weakly interacting anion NTf. We provide reasonable relations between microscopic and macroscopic properties, as is relevant for any kind of application.

摘要

我们表明,固态核磁共振光谱是表征质子离子液体(PILs)的结构、氢键动力学和相变行为的合适方法。氘核线形和自旋弛豫时间分析描述了模型PIL三乙铵双(三氟甲磺酰)酰胺[TEA][NTf]固态中的结构和动力学非均质性。在其中,我们观察到TEA阳离子的ND键有两个氘核四极耦合常数,表明与NTf阴离子的氮和氧原子形成的氢键强度不同,这一点我们可以通过密度泛函理论计算得到证实。动态非均相中的转变过程由两个标准摩尔焓表征,因此有不同的熔化阶段。我们给出了PIL固态和液态中阳离子的几何结构、速率和能量学。与具有更强相互作用阴离子的PILs相比,在存在弱相互作用阴离子NTf的情况下,TEA阳离子在固态和液态之间的焓变更高,翻滚运动的活化能垒更低, librational运动的振幅更高。我们给出了微观和宏观性质之间的合理关系,这与任何应用都相关。

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