Thermodynamics Research Center / ThermoML | Fluid Phase Equilibria

Separation of 2-phenylethanol (PEA) from water using ionic liquids

Domanska, U.[Urszula], Okuniewska, P.[Patrycja], Krolikowski, M.[Marek]
Fluid Phase Equilib. 2016, 423, 109-119
ABSTRACT
This work presents some important issues and topics related to chemical thermodynamics of ionic liquids (ILs). It consist of a series of experimental measurements in binary and ternary phase equilibrium systems connected with possible extraction of 2-phenylethanol (PEA) from aqueous phase in situ during the bioproduction. New experimental (solid + liquid) phase equilibrium (SLE) data for two binary systems {IL (1) + PEA (2)} and few (liquid + liquid) phase equilibrium (LLE) in binary systems {IL (1) + H2O (2)}, as well as LLE in five ternary systems of {IL (1) + PEA (2) + water (3)} at temperature T = 308.15 K and ambient pressure are reported. The systems are composed of the ILs: N-butyl-N-trimethylammonium bis{(trifluoromethyl)sulfonyl}imide, [N1114][NTf2], (2-hydroxyethyl)-N-trimethylammonium bis{(trifluoromethyl)sulfonyl}imide, [N1112OH][NTf2], N-N-diethyl-N-methyl-N-(2- methoxyethyl)ammonium bis{(trifluoromethyl)sulfonyl}imide, [N2212OCH3][NTf2], N-methyl-N-trioctylammonium bis{(trifluoromethyl)sulfonyl}imide, [N1888][NTf2], and N-triethyl-N-octylammonium bis {(trifluoromethyl)sulfonyl}imide, [N2228][NTf2], with PEA or water. The miscibility of some of these ILs with water was known from the literature. A differential scanning calorimetry (DSC) was used to determine the melting point and the enthalpy of melting, solid-solid phase transition temperature and enthalpy, as well as glass transition of the ILs. The [N1114][NTf2] and [N1112OH][NTf2] showed complete miscibility in the liquid phase in a binary system with PEA at temperatures higher than the solubility curve. The latest ILs as [N2212OCH3][NTf2], [N1888][NTf2], and [N2228][NTf2] showed complete miscibility with PEA at temperature T = 308.15 K. The solubility of the ILs in PEA decreases in the order [N1114] [NTf2] greater than [N1112OH][NTf2]. All systems revealed immiscibility gap with water (literature and our data). The solubility of water in the ILs increases in the order [N1888][NTf2] less than [N2228][NTf2] less than [N2212OCH3] [NTf2] less than [N1114][NTf2] less than [N1112OH][NTf2]. The average selectivity of the extraction of PEA from water increases in the following order: [N1112OH][NTf2] (S_av = 130) less than [N1114][NTf2] (S_av = 294) less than [N2212OCH3][NTf2] (S_av = 319) less than [N2228][NTf2] (S_av = 711) less than [N1888][NTf2] (S_av = 806). The correlation of the solubility curves in binary systems, and tie-lines in ternary systems was undertaken with the NRTL excess Gibbs energy equation. The model correlates the solubility of the ternary systems with an acceptable average root mean square deviation (sigma_x = 0.0039). Our results of ternary LLE may be used to design future alternative technological processes of the extraction of PEA from the fermentation broth with [N1888][NTf2] or [N2228][NTf2].
Compounds
# Formula Name
1 C8H10O 2-phenylethanol
2 H2O water
3 C10H20F6N2O5S2 N,N-diethyl-2-methoxy-N-methylethan-1-aminium bis((trifluoromethyl)sulfonyl)amide
4 C27H54F6N2O4S2 methyltrioctylammonium 1,1,1-trifluoro-N-[(trifluoromethyl)sulfonyl]methanesulfonamide
5 C16H32F6N2O4S2 triethyloctylammonium bis[(trifluoromethyl)sulfonyl]imide
6 C9H18F6N2O4S2 butyltrimethylammonium bis(trifluoromethylsulfonyl)imide
7 C7H14F6N2O5S2 choline bis(trifluoromethylsulfonyl)imide
Datasets
The table above is generated from the ThermoML associated json file (link above). POMD and RXND refer to PureOrMixture and Reaction Datasets. The compound numbers are included in properties, variables, and phases, if specificied; the numbers refer to the table of compounds on the left.
Type Compound-# Property Variable Constraint Phase Method #Points
  • POMD
  • 6
  • Molar enthalpy of transition or fusion, kJ/mol ; Crystal 1
  • Crystal 1
  • Liquid
  • Air at 1 atmosphere
  • DSC
  • 1
  • POMD
  • 6
  • Triple point temperature, K ; Crystal 2
  • Crystal 2
  • Crystal 1
  • Air at 1 atmosphere
  • DSC
  • 1
  • POMD
  • 6
  • Molar enthalpy of transition or fusion, kJ/mol ; Crystal 2
  • Crystal 2
  • Crystal 1
  • Air at 1 atmosphere
  • DSC
  • 1
  • POMD
  • 6
  • Normal melting temperature, K ; Crystal
  • Crystal
  • Liquid
  • Air at 1 atmosphere
  • VISOBS
  • 1
  • POMD
  • 6
  • Solid-liquid equilibrium temperature, K ; Crystal of unknown type
  • Pressure, kPa; Crystal of unknown type
  • Crystal of unknown type
  • Liquid
  • VISOBS
  • 1
  • POMD
  • 7
  • Molar enthalpy of transition or fusion, kJ/mol ; Crystal 1
  • Crystal 1
  • Liquid
  • Air at 1 atmosphere
  • DSC
  • 1
  • POMD
  • 7
  • Triple point temperature, K ; Crystal 2
  • Crystal 2
  • Crystal 1
  • Air at 1 atmosphere
  • DSC
  • 1
  • POMD
  • 7
  • Molar enthalpy of transition or fusion, kJ/mol ; Crystal 2
  • Crystal 2
  • Crystal 1
  • Air at 1 atmosphere
  • DSC
  • 1
  • POMD
  • 7
  • Normal melting temperature, K ; Crystal 1
  • Crystal 1
  • Liquid
  • Air at 1 atmosphere
  • VISOBS
  • 1
  • POMD
  • 7
  • Solid-liquid equilibrium temperature, K ; Crystal of unknown type
  • Pressure, kPa; Crystal of unknown type
  • Crystal of unknown type
  • Liquid
  • VISOBS
  • 1
  • POMD
  • 1
  • 6
  • Solid-liquid equilibrium temperature, K ; Liquid
  • Mole fraction - 6; Liquid
  • Pressure, kPa; Liquid
  • Liquid
  • Crystal of unknown type
  • VISOBS
  • 10
  • POMD
  • 1
  • 7
  • Solid-liquid equilibrium temperature, K ; Liquid
  • Mole fraction - 7; Liquid
  • Pressure, kPa; Liquid
  • Liquid
  • Crystal of unknown type
  • VISOBS
  • 4
  • POMD
  • 1
  • 7
  • Solid-liquid equilibrium temperature, K ; Liquid
  • Mole fraction - 7; Liquid
  • Pressure, kPa; Liquid
  • Liquid
  • Crystal of unknown type
  • VISOBS
  • 5
  • POMD
  • 2
  • 3
  • Liquid-liquid equilibrium temperature, K ; Liquid mixture 1
  • Mole fraction - 3; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 1
  • Liquid mixture 2
  • VISOBS
  • 12
  • POMD
  • 2
  • 3
  • Mole fraction - 3 ; Liquid mixture 2
  • Temperature, K; Liquid mixture 2
  • Pressure, kPa; Liquid mixture 2
  • Liquid mixture 2
  • Liquid mixture 1
  • conductivity
  • 6
  • POMD
  • 2
  • 4
  • Liquid-liquid equilibrium temperature, K ; Liquid mixture 1
  • Mole fraction - 4; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 1
  • Liquid mixture 2
  • VISOBS
  • 8
  • POMD
  • 2
  • 4
  • Mole fraction - 4 ; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • 1
  • POMD
  • 2
  • 4
  • Liquid-liquid equilibrium temperature, K ; Liquid mixture 1
  • Mole fraction - 4; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 1
  • Liquid mixture 2
  • VISOBS
  • 9
  • POMD
  • 2
  • 5
  • Liquid-liquid equilibrium temperature, K ; Liquid mixture 1
  • Mole fraction - 5; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 1
  • Liquid mixture 2
  • VISOBS
  • 10
  • POMD
  • 2
  • 5
  • Mole fraction - 5 ; Liquid mixture 2
  • Temperature, K; Liquid mixture 2
  • Pressure, kPa; Liquid mixture 2
  • Liquid mixture 2
  • Liquid mixture 1
  • conductivity
  • 6
  • POMD
  • 2
  • 5
  • Liquid-liquid equilibrium temperature, K ; Liquid mixture 1
  • Mole fraction - 5; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 1
  • Liquid mixture 2
  • VISOBS
  • 9
  • POMD
  • 1
  • 2
  • 6
  • Mole fraction - 1 ; Liquid mixture 2
  • Mole fraction - 6 ; Liquid mixture 1
  • Mole fraction - 1 ; Liquid mixture 1
  • Mole fraction - 6; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • Chromatography
  • Chromatography
  • 16
  • POMD
  • 1
  • 2
  • 7
  • Mole fraction - 7 ; Liquid mixture 2
  • Mole fraction - 7 ; Liquid mixture 1
  • Mole fraction - 1 ; Liquid mixture 1
  • Mole fraction - 1; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • Chromatography
  • Chromatography
  • 13
  • POMD
  • 1
  • 2
  • 3
  • Mole fraction - 1 ; Liquid mixture 2
  • Mole fraction - 3 ; Liquid mixture 1
  • Mole fraction - 1 ; Liquid mixture 1
  • Mole fraction - 3; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • Chromatography
  • Chromatography
  • 12
  • POMD
  • 1
  • 2
  • 4
  • Mole fraction - 1 ; Liquid mixture 2
  • Mole fraction - 4 ; Liquid mixture 1
  • Mole fraction - 1 ; Liquid mixture 1
  • Mole fraction - 4; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • Chromatography
  • Chromatography
  • 11
  • POMD
  • 1
  • 2
  • 5
  • Mole fraction - 1 ; Liquid mixture 2
  • Mole fraction - 5 ; Liquid mixture 1
  • Mole fraction - 1 ; Liquid mixture 1
  • Mole fraction - 5; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • Chromatography
  • Chromatography
  • 14
  • POMD
  • 1
  • 2
  • Mole fraction - 1 ; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • 1
  • POMD
  • 2
  • 7
  • Mole fraction - 7 ; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • 1
  • POMD
  • 2
  • 6
  • Mole fraction - 6 ; Liquid mixture 2
  • Temperature, K; Liquid mixture 1
  • Pressure, kPa; Liquid mixture 1
  • Liquid mixture 2
  • Liquid mixture 1
  • Chromatography
  • 1