Cargando…

Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid

Binary mixtures of hydrocarbons and a thermally robust ionic liquid (IL) incorporating a perarylphosphonium-based cation are investigated experimentally and computationally. Experimentally, it is seen that excess toluene added to the IL forms two distinct liquid phases, an “ion-rich” phase of fixed...

Descripción completa

Detalles Bibliográficos
Autores principales: Bandlamudi, Santosh R. P., McGehee, Jimmie L., Mando, Albaraa D., Soltani, Mohammad, Turner, C. Heath, Davis, James H., West, Kevin N., Rabideau, Brooks D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041297/
https://www.ncbi.nlm.nih.gov/pubmed/35496850
http://dx.doi.org/10.1039/d1ra06268a
_version_ 1784694516223049728
author Bandlamudi, Santosh R. P.
McGehee, Jimmie L.
Mando, Albaraa D.
Soltani, Mohammad
Turner, C. Heath
Davis, James H.
West, Kevin N.
Rabideau, Brooks D.
author_facet Bandlamudi, Santosh R. P.
McGehee, Jimmie L.
Mando, Albaraa D.
Soltani, Mohammad
Turner, C. Heath
Davis, James H.
West, Kevin N.
Rabideau, Brooks D.
author_sort Bandlamudi, Santosh R. P.
collection PubMed
description Binary mixtures of hydrocarbons and a thermally robust ionic liquid (IL) incorporating a perarylphosphonium-based cation are investigated experimentally and computationally. Experimentally, it is seen that excess toluene added to the IL forms two distinct liquid phases, an “ion-rich” phase of fixed composition and a phase that is nearly pure toluene. Conversely, n-heptane is observed to be essentially immiscible in the neat IL. Molecular dynamics simulations capture both of these behaviours. Furthermore, the simulated composition of the toluene-rich IL phase is within 10% of the experimentally determined composition. Additional simulations are performed on the binary mixtures of the IL and ten other small hydrocarbons having mixed aromatic/aliphatic character. It is found that hydrocarbons with a predominant aliphatic character are largely immiscible with the IL, while those with a predominant aromatic character readily mix with the IL. A detailed analysis of the structure and energetic changes that occur on mixing reveals the nature of the ion-rich phase. The simulations show a bicontinuous phase with hydrocarbon uptake akin to absorption and swelling by a porous absorbent. Aromatic hydrocarbons are driven into the neat IL via dispersion forces with the IL cations and, to a lesser extent, the IL anions. The ion–ion network expands to accommodate the hydrocarbons, yet maintains a core connective structure. At a certain loading, this network becomes stretched to its limit. The energetic penalty associated with breaking the core connective network outweighs the gain from new hydrocarbon–IL interactions, leaving additional hydrocarbons in the neat phase. The spatially alternating charge of the expanded IL network is shown to interact favourably with the stacked aromatic subphase, something not possible for aliphatic hydrocarbons.
format Online
Article
Text
id pubmed-9041297
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90412972022-04-28 Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid Bandlamudi, Santosh R. P. McGehee, Jimmie L. Mando, Albaraa D. Soltani, Mohammad Turner, C. Heath Davis, James H. West, Kevin N. Rabideau, Brooks D. RSC Adv Chemistry Binary mixtures of hydrocarbons and a thermally robust ionic liquid (IL) incorporating a perarylphosphonium-based cation are investigated experimentally and computationally. Experimentally, it is seen that excess toluene added to the IL forms two distinct liquid phases, an “ion-rich” phase of fixed composition and a phase that is nearly pure toluene. Conversely, n-heptane is observed to be essentially immiscible in the neat IL. Molecular dynamics simulations capture both of these behaviours. Furthermore, the simulated composition of the toluene-rich IL phase is within 10% of the experimentally determined composition. Additional simulations are performed on the binary mixtures of the IL and ten other small hydrocarbons having mixed aromatic/aliphatic character. It is found that hydrocarbons with a predominant aliphatic character are largely immiscible with the IL, while those with a predominant aromatic character readily mix with the IL. A detailed analysis of the structure and energetic changes that occur on mixing reveals the nature of the ion-rich phase. The simulations show a bicontinuous phase with hydrocarbon uptake akin to absorption and swelling by a porous absorbent. Aromatic hydrocarbons are driven into the neat IL via dispersion forces with the IL cations and, to a lesser extent, the IL anions. The ion–ion network expands to accommodate the hydrocarbons, yet maintains a core connective structure. At a certain loading, this network becomes stretched to its limit. The energetic penalty associated with breaking the core connective network outweighs the gain from new hydrocarbon–IL interactions, leaving additional hydrocarbons in the neat phase. The spatially alternating charge of the expanded IL network is shown to interact favourably with the stacked aromatic subphase, something not possible for aliphatic hydrocarbons. The Royal Society of Chemistry 2021-09-22 /pmc/articles/PMC9041297/ /pubmed/35496850 http://dx.doi.org/10.1039/d1ra06268a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Bandlamudi, Santosh R. P.
McGehee, Jimmie L.
Mando, Albaraa D.
Soltani, Mohammad
Turner, C. Heath
Davis, James H.
West, Kevin N.
Rabideau, Brooks D.
Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid
title Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid
title_full Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid
title_fullStr Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid
title_full_unstemmed Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid
title_short Understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid
title_sort understanding liquid–liquid equilibria in binary mixtures of hydrocarbons with a thermally robust perarylphosphonium-based ionic liquid
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041297/
https://www.ncbi.nlm.nih.gov/pubmed/35496850
http://dx.doi.org/10.1039/d1ra06268a
work_keys_str_mv AT bandlamudisantoshrp understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid
AT mcgeheejimmiel understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid
AT mandoalbaraad understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid
AT soltanimohammad understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid
AT turnercheath understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid
AT davisjamesh understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid
AT westkevinn understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid
AT rabideaubrooksd understandingliquidliquidequilibriainbinarymixturesofhydrocarbonswithathermallyrobustperarylphosphoniumbasedionicliquid