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1.
J Phys Chem B ; 120(32): 7906-19, 2016 08 18.
Article in English | MEDLINE | ID: mdl-27447741

ABSTRACT

Select ionic liquids (ILs) dissolve significant quantities of cellulose through disruption and solvation of inter- and intramolecular hydrogen bonds. In this study, thermodynamic solid-liquid equilibrium was measured with microcrystalline cellulose in a model IL, 1-ethyl-3-methylimidazolium diethyl phosphate ([EMIm][DEP]) and mixtures with protic antisolvents and aprotic cosolvents between 40 and 120 °C. The solubility of cellulose in pure [EMIm][DEP] exhibits an asymptotic maximum of approximately 20 mass % above 100 °C. Solubility studies conducted on antisolvent mixtures with [EMIm][DEP] and [BMIm][Cl] indicate that protic solvents, ethanol, methanol, and water, significantly reduce the cellulose capacity of IL mixtures by 38-100% even at small antisolvent loadings (<5 mass %). Alternatively, IL-aprotic cosolvent (dimethyl sulfoxide, dimethylformamide, and 1,3-dimethyl-2-imidazolidinone) mixtures at mass ratios up to 1:1 enhance cellulose dissolution by 20-60% compared to pure [EMIm][DEP] at select temperatures. Interactions between the IL and molecular solvents were investigated by Kamlet-Taft solvatochromic analysis, FTIR, and NMR spectroscopy. The results indicate that preferential solvation of the IL cation and anion by co- and antisolvents impact the ability of IL ions to interact with cellulose thus affecting the cellulose dissolution capacity of IL-solvent mixtures.


Subject(s)
Cellulose/chemistry , Ionic Liquids/chemistry , Solvents/chemistry , Cellulose/metabolism , Hydrogen Bonding , Molecular Structure , Nuclear Magnetic Resonance, Biomolecular , Solubility , Spectroscopy, Fourier Transform Infrared , Thermodynamics , Viscosity
2.
Chem Commun (Camb) ; 51(63): 12649-52, 2015 Aug 14.
Article in English | MEDLINE | ID: mdl-26159829

ABSTRACT

A novel physical (non-reactive) separation of cellulose from an ionic liquid (IL)/cosolvent mixture by compressed carbon dioxide is presented. The precipitation is completely reversible and rapid within small changes of pressure i.e. liquid phase CO2 composition. High pressure phase equilibrium, high pressure NMR, and solid state NMR have been utilized to understand the separation phenomena.


Subject(s)
Carbon Dioxide/chemistry , Cellulose/chemistry , Ionic Liquids/chemistry , Hydrogen Bonding , Magnetic Resonance Spectroscopy , Pressure
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