Ebrahimi Sadollah, Singh Sanjeet Kumar, Rhazaoui Abdessamia, Letendart Colin, Daigle Jean-Christophe, Benabed Yasmine, Soldera Armand
Department of Chemistry, Université de Sherbrooke, Sherbrooke J1K2R1 Quebec, Canada.
Center of Excellence in Transportation Electrification and Energy Storage, Hydro-Quebec, Varennes J3X 1S1 Quebec, Canada.
J Phys Chem B. 2025 May 15;129(19):4832-4843. doi: 10.1021/acs.jpcb.5c00469. Epub 2025 May 1.
In recent years, organic ionic plastic crystals (OIPCs) have emerged as promising materials for various applications due to their unique properties, such as high ionic conductivity and high melting temperatures. The macroscopic properties of OIPCs are closely related to their molecular structure, and a deep understanding of the molecular level behavior and the associated thermo-physical properties is necessary to determine their potential application as solid electrolytes for all-solid-state batteries (ASSBs). It was shown that both [DBUH] and [FSI]-based OIPCs behave as good ionic conductors. Recently, protic OIPC (POIPC), [DBUH][FSI] ((10aR)-decahydropyrimido[1, 2-a]azepine -fluorosulfonylsulfamoyl fluoride), has been synthesized and successfully tested as a solid electrolyte for ASSBs. In this work, the various structural features and dynamical properties of [DBUH][FSI] have been explored in detail by carrying out molecular dynamics simulations for the first time. The initial configuration is generated using the experimental crystalline structure from Hydro-Quebec. The temperature evolution of the various structural and dynamic properties has been studied. The simulated density, melting point, hydrogen bond distances, and angles are in excellent agreement with the experimental data. The effect of hydrogen bond strength, interactions, and structural correlation on the ion's mobility has been investigated. The mean square displacement and rotational autocorrelation functions reveal the greater dynamics of the anion compared to that of the cation, specifically at low temperatures. We find that the higher mobility of the anion can impact the dynamical properties of [DBUH]-based POIPCs at low temperatures.
近年来,有机离子塑性晶体(OIPCs)因其独特的性能,如高离子导电性和高熔点,已成为各种应用中颇具前景的材料。OIPCs的宏观性能与其分子结构密切相关,深入了解其分子水平行为及相关热物理性质对于确定其作为全固态电池(ASSBs)固体电解质的潜在应用至关重要。研究表明,基于[DBUH]和[FSI]的OIPCs均表现为良好的离子导体。最近,质子化OIPC(POIPC),即[DBUH][FSI]((10aR)-十氢嘧啶并[1,2-a]氮杂卓 -氟磺酰基磺胺氟化物)已被合成,并成功作为ASSBs的固体电解质进行了测试。在这项工作中,首次通过进行分子动力学模拟详细探索了[DBUH][FSI]的各种结构特征和动力学性质。初始构型是根据魁北克水电公司的实验晶体结构生成的。研究了各种结构和动力学性质的温度演变。模拟的密度、熔点、氢键距离和角度与实验数据高度吻合。研究了氢键强度、相互作用和结构相关性对离子迁移率的影响。均方位移和旋转自相关函数揭示了阴离子在动力学方面比阳离子更活跃,特别是在低温下。我们发现阴离子较高的迁移率会影响基于[DBUH]的POIPCs在低温下的动力学性质。