AI Article Synopsis

  • The review focuses on thermoresponsive systems made of water solutions of organic salts, specifically low melting ionic liquids.
  • The behavior of these systems involves a temperature-driven transition between a single liquid state and a two-phase system, either from high to low temperatures or vice versa.
  • Recent advancements show potential applications in areas like extraction, separation, catalysis, as well as promising future uses in desalination, thermal storage, and atmospheric water harvesting.

Article Abstract

The thermodynamics, structures, and applications of thermoresponsive systems, consisting primarily of water solutions of organic salts, are reviewed. The focus is on organic salts of low melting temperatures, belonging to the ionic liquid (IL) family. The thermo-responsiveness is represented by a temperature driven transition between a homogeneous liquid state and a biphasic state, comprising an IL-rich phase and a solvent-rich phase, divided by a relatively sharp interface. Demixing occurs either with decreasing temperatures, developing from an upper critical solution temperature (UCST), or, less often, with increasing temperatures, arising from a lower critical solution temperature (LCST). In the former case, the enthalpy and entropy of mixing are both positive, and enthalpy prevails at low . In the latter case, the enthalpy and entropy of mixing are both negative, and entropy drives the demixing with increasing . Experiments and computer simulations highlight the contiguity of these phase separations with the nanoscale inhomogeneity (nanostructuring), displayed by several ILs and IL solutions. Current applications in extraction, separation, and catalysis are briefly reviewed. Moreover, future applications in forward osmosis desalination, low-enthalpy thermal storage, and water harvesting from the atmosphere are discussed in more detail.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8912101PMC
http://dx.doi.org/10.3390/molecules27051647DOI Listing

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