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

被引:0
|
作者
Shim, Youngseon [1 ]
Shim, Munbo [1 ]
Kim, Dae Sin [1 ]
机构
[1] Samsung Elect Co Ltd, Innovat Ctr, 130 Samsungjeonja Ro, Hwaseong Si 16678, Gyeonggi Do, South Korea
关键词
poly(ionic liquid)s; glass transition temperature; mechanical modulus; molecular dynamics simulation; TEMPERATURE IONIC LIQUIDS; EPOXY-AMINE NETWORKS; CROSS-LINK DENSITY; MOLECULAR-DYNAMICS; CYCLIC CARBONATES; POLYMERS; TRANSPORT; CATALYSTS; EFFICIENT; CO2;
D O I
10.3390/membranes12050450
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
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, 342-(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 (TESI-) 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-g) 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 TESI- to Cl-, both T-g 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 TESI- ions generate a PIL with higher T-g 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 pi-pi 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 TESI-. 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-g 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 similar to 2 compared to TESI- due to their stronger binding to the cationic polymer backbone.
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页数:12
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