Transport properties in a family of dialkylimidazolium ionic liquids
- 9 March 2004
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Physical Chemistry Chemical Physics
- Vol. 6 (8) , 1758-1765
- https://doi.org/10.1039/b315813f
Abstract
The transport properties of 1,3-methylalkylimidazolium based ionic liquids are sensitive to their chemical structure. In this work, two key features of the chemical structure were investigated: the role of the anion and the length of the alkyl chain. Four different anions were examined for the 1,3-methylethylimidazolium salt (MeEtImX): bromide (Br−), iodide (I−), trifluoromethanesulfonate (Tf−) and bis(trifluoromethanesulfonyl)amide (NTf2 −) anions. Increasing the size of the anion resulted in a decrease of the melting point and a slight increase in the cation diffusion coefficient. The differences in cation diffusion behaviour reflect the differences in viscosity, with much higher viscosities expected for the halide salts. In contrast to this diffusion behaviour, the melt conductivities are all very similar. The inconsistency between the calculated conductivity (based on diffusion measurements) and the conductivity measured, however, is attributed to correlated ion motions and/or the diffusion of neutral species that do not contribute to the conductivity. The effect of the length of the alkyl substituent was also studied for 1,3-methylalkylimidazolium iodide (MeRImI). Increasing the length of the alkyl chain, from methyl to a linear heptyl chain, suppresses the melting point and decreases both the conductivity and cation diffusion coefficients. In this case, the viscosity, as well as the size of the cation, influence ion transport in these materials.Keywords
This publication has 21 references indexed in Scilit:
- The effect of the coexistence of anion species in imidazolium cation-based molten salt systemsSolid State Ionics, 2002
- Pulsed-Gradient Spin−Echo 1H and 19F NMR Ionic Diffusion Coefficient, Viscosity, and Ionic Conductivity of Non-Chloroaluminate Room-Temperature Ionic LiquidsThe Journal of Physical Chemistry B, 2001
- Design of New Ionic Liquids by Neutralization of Imidazole Derivatives with Imide-Type AcidsElectrochemical and Solid-State Letters, 2001
- Electrochemical Properties of Imidazolium Salt Electrolytes for Electrochemical Capacitor ApplicationsJournal of the Electrochemical Society, 1999
- The Performance and Stability of Ambient Temperature Molten Salts for Solar Cell ApplicationsJournal of the Electrochemical Society, 1996
- Hydrophobic, Highly Conductive Ambient-Temperature Molten SaltsInorganic Chemistry, 1996
- 13C NMR Relaxation and 1H Diffusion (DOSY) Studies of an Acidic Chloroaluminate MeltThe Journal of Physical Chemistry, 1996
- Aluminum Bromide‐1‐Methyl‐3‐Ethylimidazolium Bromide Ionic Liquids: I . Densities, Viscosities, Electrical Conductivities, and Phase TransitionsJournal of the Electrochemical Society, 1986
- Dialkylimidazolium chloroaluminate melts: a new class of room-temperature ionic liquids for electrochemistry, spectroscopy and synthesisInorganic Chemistry, 1982
- Self-diffusion in normal and heavy water in the range 1-45.deg.The Journal of Physical Chemistry, 1973