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聚离子液体热性能和力学性能的计算机模拟研究

A Computer Simulation Study of Thermal and Mechanical Properties of Poly(Ionic Liquid)s.

作者信息

Shim Youngseon, Shim Munbo, Kim Dae Sin

机构信息

Innovation Center, Samsung Electronics Co., Ltd., 130 Samsungjeonja-ro, Hwaseong-si 16678, Gyeonggi-do, Korea.

出版信息

Membranes (Basel). 2022 Apr 21;12(5):450. doi: 10.3390/membranes12050450.

Abstract

Thermal and mechanical properties of poly(ionic liquid)s (PILs), an epoxidized ionic liquid-amine network, are studied via molecular dynamics simulations. The poly(ionic liquid)s are designed with two different ionic liquid monomers, 3-[2-(Oxiran-2-yl)ethyl]-1-{4-[(2-oxiran-2-yl)ethoxy]phenyl}imidazolium (EIM2) and 1-{4-[2-(Oxiran-2-yl)ethyl]phenyl}-3-{4-[2-(oxiran-2-yl)ethoxy]benzyl}imidazolium (EIM1), each of which is networked with tris(2-aminoethyl)amine, paired with different anions, bis(trifluoromethanesulfonyl)imide (TFSI) and chloride (Cl). We investigate how ionic liquid monomers with high ionic strength affect structures of the cross-linked polymer networks and their thermomechanical properties such as glass transition temperature (T) and elastic moduli, varying the degree of cross-linking. Strong electrostatic interactions between the cationic polymer backbone and anions build up their strong structures of which the strength depends on their molecular structures and anion size. As the anion size decreases from TFSI to Cl, both T and elastic moduli of the PIL increase due to stronger electrostatic interactions present between their ionic moieties, making it favorable for the PIL to organize with stronger bindings. Compared to the EIM2 monomer, the EIM1 monomers and TFSI ions generate a PIL with higher T and elastic moduli. This attributes to the less flexible structure of the EIM1 monomer for the chain rotation, in which steric hindrance by ring moieties in the EIM1-based PIL enhances their structural rigidity. The π-π stacking structures between the rings are found to increase in EIM1-based PIL compared to the EIM2-based one, which becomes stronger with smaller Cl ion rather than TFSI. The effect of the degree of the cross-linking on thermal and mechanical properties is also examined. As the degree of cross-linking decreases from 100% to 60%, T also decreases by a factor of 10-20%, where the difference among the given PILs becomes decreased with a lower degree of cross-linking. Both the Young's (E) and shear (G) moduli of all the PILs decrease with degree of cross-linking, which the reduction is more significant for the PIL generated with EIM2 monomers. Transport properties of anions in PILs are also studied. Anions are almost immobilized globally with very small structural fluctuations, in which Cl presents lower diffusivity by a factor of ~2 compared to TFSI due to their stronger binding to the cationic polymer backbone.

摘要

通过分子动力学模拟研究了聚离子液体(PILs)(一种环氧化离子液体 - 胺网络)的热性能和力学性能。聚离子液体由两种不同的离子液体单体设计而成,即3 - [2 - (环氧乙烷 - 2 - 基)乙基] - 1 - {4 - [(2 - 环氧乙烷 - 2 - 基)乙氧基]苯基}咪唑鎓(EIM2)和1 - {4 - [2 - (环氧乙烷 - 2 - 基)乙基]苯基} - 3 - {4 - [2 - (环氧乙烷 - 2 - 基)乙氧基]苄基}咪唑鎓(EIM1),每种单体都与三(2 - 氨基乙基)胺形成网络结构,并与不同的阴离子双(三氟甲磺酰)亚胺(TFSI)和氯离子(Cl)配对。我们研究了具有高离子强度的离子液体单体如何影响交联聚合物网络的结构及其热机械性能,如玻璃化转变温度(T)和弹性模量,并改变交联度。阳离子聚合物主链与阴离子之间的强静电相互作用形成了它们的强结构,其强度取决于它们的分子结构和阴离子大小。随着阴离子大小从TFSI减小到Cl,PIL的T和弹性模量都增加,这是由于其离子部分之间存在更强的静电相互作用,使得PIL能够以更强的键合方式进行组装。与EIM2单体相比,EIM1单体和TFSI离子生成的PIL具有更高的T和弹性模量。这归因于EIM1单体用于链旋转的结构较不灵活,其中基于EIM1的PIL中环部分的空间位阻增强了它们的结构刚性。与基于EIM2的PIL相比,发现基于EIM1的PIL中环比之间的π - π堆积结构增加,并且与较小的Cl离子而非TFSI形成的结构更强。还研究了交联度对热性能和力学性能的影响。随着交联度从100%降低到60%,T也降低了10 - 20%,其中给定的PIL之间的差异随着交联度降低而减小。所有PIL的杨氏模量(E)和剪切模量(G)都随交联度降低,其中由EIM2单体生成的PIL的降低更为显著。还研究了PIL中阴离子的传输性能。阴离子在整体上几乎固定不动,结构波动非常小,其中Cl由于与阳离子聚合物主链的结合更强,其扩散率比TFSI低约2倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da20/9143233/7518c9c9fb27/membranes-12-00450-g001.jpg

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