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Computational predictions on Brønsted acidic ionic liquid-catalyzed carbon dioxide conversion to five-membered heterocyclic carbonyl derivatives

  • Yusif Abdullayev
  • , Nazani Karimova
  • , Leonardo A. Schenberg
  • , Lucas C. Ducati
  • , Jochen Autschbach
  • Baku Engineering University
  • Azerbaijan National Academy of Sciences
  • Universidade de São Paulo

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Experimentally conducted reactions between CO2 and various substrates (i.e., ethylenediamine (EDA), ethanolamine (ETA), ethylene glycol (EG), mercaptoethanol (ME), and ethylene dithiol (EDT)) are considered in a computational study. The reactions were previously conducted under harsh conditions utilizing toxic metal catalysts. We computationally utilize Brønsted acidic ionic liquid (IL) [Et2NH2]HSO4 as a catalyst aiming to investigate and propose ‘greener’ pathways for future experimental studies. Computations show that EDA is the best to fixate CO2 among the tested substrates: the nucleophilic EDA attack on CO2 is calculated to have a very small energy barrier to overcome (TS1EDA, ΔG = 1.4 kcal mol−1) and form I1EDA (carbamic acid adduct). The formed intermediate is converted to cyclic urea (PEDA, imidazolidin-2-one) via ring closure and dehydration of the concerted transition state (TS2EDA, ΔG = 32.8 kcal mol−1). Solvation model analysis demonstrates that nonpolar solvents (hexane, THF) are better for fixing CO2 with EDA. Attaching electron-donating and -withdrawing groups to EDA does not reduce the energy barriers. Modifying the IL via changing the anion part (HSO4) central S atom with 6 A and 5 A group elements (Se, P, and As) shows that a Se-based IL can be utilized for the same purpose.

Original languageEnglish
Pages (from-to)8624-8630
Number of pages7
JournalPhysical Chemistry Chemical Physics
Volume25
Issue number12
DOIs
StatePublished - Feb 23 2023

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