Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry Study

Pyrrolidinium-based (Pyr) ionic liquids are a very wide family of molecular species. Pyrrolidinium cations are electrochemically stable in a large potential interval and their molecular size hinders their transport properties. The corresponding ionic liquids with trifluoromethyl sulphonyl imide anio...

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Main Author: Sergio Brutti
Format: Article
Language:English
Published: MDPI AG 2020-11-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/23/8552
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spelling doaj-59d3421e2d5d4d7e954fd3f9078c227e2020-11-30T00:01:41ZengMDPI AGApplied Sciences2076-34172020-11-01108552855210.3390/app10238552Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry StudySergio Brutti0Department of Chemistry, University of Rome La Sapienza, Piazzale Aldo Moro 5, 00185 Rome, ItalyPyrrolidinium-based (Pyr) ionic liquids are a very wide family of molecular species. Pyrrolidinium cations are electrochemically stable in a large potential interval and their molecular size hinders their transport properties. The corresponding ionic liquids with trifluoromethyl sulphonyl imide anions are excellent solvents for lithium/sodium salts and have been demonstrated as electrolytes in aprotic batteries with enhanced safety standards. In this study, the analysis of the physicochemical properties of a homologous series of pyrrolidinium-based ionic liquids with general formula Pyr<sub>1,x</sub>TFSI (x = 1–8) have been tackled by first principles calculations based on the density functional theory. The molecular structures of isolated ions and ion pairs have been predicted by electronic structure calculations at B3LYP level of theory in vacuum or in simulated solvents. Thermodynamic properties have been calculated to evaluate the ion pairs dissociation and oxidation/reduction stability. This is the first systematic computational analysis of this series of molecules with a specific focus on the impact of the length of the alkyl chain on the pyrrolidinium cation on the overall physicochemical properties of the ion pairs.https://www.mdpi.com/2076-3417/10/23/8552ionic liquidsdensity functional theory (DFT)computational chemistry
collection DOAJ
language English
format Article
sources DOAJ
author Sergio Brutti
spellingShingle Sergio Brutti
Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry Study
Applied Sciences
ionic liquids
density functional theory (DFT)
computational chemistry
author_facet Sergio Brutti
author_sort Sergio Brutti
title Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry Study
title_short Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry Study
title_full Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry Study
title_fullStr Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry Study
title_full_unstemmed Pyr<sub>1,x</sub>TFSI Ionic Liquids (x = 1–8): A Computational Chemistry Study
title_sort pyr<sub>1,x</sub>tfsi ionic liquids (x = 1–8): a computational chemistry study
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-11-01
description Pyrrolidinium-based (Pyr) ionic liquids are a very wide family of molecular species. Pyrrolidinium cations are electrochemically stable in a large potential interval and their molecular size hinders their transport properties. The corresponding ionic liquids with trifluoromethyl sulphonyl imide anions are excellent solvents for lithium/sodium salts and have been demonstrated as electrolytes in aprotic batteries with enhanced safety standards. In this study, the analysis of the physicochemical properties of a homologous series of pyrrolidinium-based ionic liquids with general formula Pyr<sub>1,x</sub>TFSI (x = 1–8) have been tackled by first principles calculations based on the density functional theory. The molecular structures of isolated ions and ion pairs have been predicted by electronic structure calculations at B3LYP level of theory in vacuum or in simulated solvents. Thermodynamic properties have been calculated to evaluate the ion pairs dissociation and oxidation/reduction stability. This is the first systematic computational analysis of this series of molecules with a specific focus on the impact of the length of the alkyl chain on the pyrrolidinium cation on the overall physicochemical properties of the ion pairs.
topic ionic liquids
density functional theory (DFT)
computational chemistry
url https://www.mdpi.com/2076-3417/10/23/8552
work_keys_str_mv AT sergiobrutti pyrsub1xsubtfsiionicliquidsx18acomputationalchemistrystudy
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