Phase equilibria study of {N-butylquinolinium bis{(trifluoromethyl)sulfonyl}imide + aromatic hydrocarbons, or an alcohol} binary systems
Creators
- 1. Department of Physical Chemistry, Faculty of Chemistry, Warsaw University of Technology, Noakowskiego 3, 00-664 Warsaw (Poland)
- 2. Thermodynamic Research Unit, School of Chemical Engineering, University of KwaZulu-Natal, Howard College Campus, King George V Avenue, Durban 4001 (South Africa)
Description
Quinolinium ionic liquid has been prepared from 1-butylquinolinium bromide as a substrate. The work includes specific basic characterization of synthesized compound by NMR spectra, elementary analysis and water content. The basic thermal properties of the pure IL, i.e. melting and glass-transition temperatures, as well as the enthalpy of fusion have been measured using a differential scanning microcalorimetry technique (DSC). (Solid + liquid) phase equilibria (SLE) and (liquid + liquid) phase equilibria (LLE) for the binary systems: ionic liquid (IL) N-butylquinolinium bis{(trifluoromethyl)sulfonyl}imide, {([BQuin][NTf2]) + aromatic hydrocarbon (benzene, or toluene, or methylbenzene, or propylbenzene, or thiophene), or an alcohol (ethanol, or 1-butanol, or 1-hexanol, or 1-octanol, or 1-dodecanol)} have been determined at ambient pressure. A dynamic method was used over a broad range of mole fractions and temperatures from (260 to 330) K. For the binary systems, the simple eutectic diagrams were observed with immiscibility in the liquid phase with an upper critical solution temperature (UCST). For mixtures with alcohols, it was observed that with increasing chain length of an alcohol the solubility decreases and the UCST increases. In the case of mixture (IL + benzene, or alkylbenzene, or thiophene) the eutectic systems with mutual immiscibility in the liquid phase with very high UCSTs were observed. These points were not detectable with our method and they were observed at low ionic liquid mole fraction. Densities at high temperatures were determined and extrapolated to T = 298.15 K. Well-known UNIQUAC, and NRTL equations have been used to correlate experimental SLE data sets. For the systems containing immiscibility gaps {IL + an alcohol} parameters of the LLE correlation equation have been derived using only the NRTL equation.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.jct.2010.04.020Additional details
Identifiers
- DOI
- 10.1016/j.jct.2010.04.020;
- PII
- S0021-9614(10)00147-3;
Publishing Information
- Journal Title
- Journal of Chemical Thermodynamics
- Journal Volume
- 42
- Journal Issue
- 9
- Journal Page Range
- p. 1180-1186
- ISSN
- 0021-9614
- CODEN
- JCTDAF
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 42017391
- Subject category
- S37: INORGANIC, ORGANIC, PHYSICAL AND ANALYTICAL CHEMISTRY;
- Descriptors DEI
- BENZENE; BROMIDES; BUTANOLS; CALORIMETRY; DENSITY; EQUATIONS; ETHANOL; EUTECTICS; FUSION HEAT; LIQUIDS; MELTING; NMR SPECTRA; ORGANIC FLUORINE COMPOUNDS; ORGANIC SULFUR COMPOUNDS; PHASE DIAGRAMS; QUINOLINES; SOLUBILITY; SOLUTIONS; TEMPERATURE RANGE 0273-0400 K; THERMODYNAMICS; THIOPHENE; TOLUENE; TRANSITION TEMPERATURE
- Descriptors DEC
- ALCOHOLS; ALKYLATED AROMATICS; AROMATICS; AZAARENES; AZINES; BROMINE COMPOUNDS; DIAGRAMS; DISPERSIONS; ENTHALPY; FLUIDS; HALIDES; HALOGEN COMPOUNDS; HETEROCYCLIC COMPOUNDS; HOMOGENEOUS MIXTURES; HYDROCARBONS; HYDROXY COMPOUNDS; INFORMATION; MIXTURES; ORGANIC COMPOUNDS; ORGANIC HALOGEN COMPOUNDS; ORGANIC NITROGEN COMPOUNDS; ORGANIC SULFUR COMPOUNDS; PHASE TRANSFORMATIONS; PHYSICAL PROPERTIES; PYRIDINES; SPECTRA; TEMPERATURE RANGE; THERMODYNAMIC PROPERTIES; TRANSITION HEAT
Optional Information
- Copyright
- Copyright (c) 2010 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.