Tackling global warming through the reduction of greenhouse gases is a key challenge mankind is called to face in the close future. Carbon dioxide is one of the main causes of such temperature increase, thus avoiding its release in the atmosphere through capture and/or utilization strategies is a valuable tool to limit greenhouse effect. Presently, the applied technology for sequestrating CO2 relies on its reaction with amines in aqueous solutions, giving rise to the formation of carbamates and carbonates. However, due to the energy intensive release step, toxicity and corrosiveness, amine scrubbing could not represent a long-term solution in CO2 capture. Ionic liquids (ILs), organic salts in the liquid state near room temperature, are a class of emerging materials with a great potential towards CO2 capture. Recently the combination of the choline cation with amino acids based anions gave rise to a wide set of bio-inspired ILs with low toxicity, that, due to the presence of amino groups in the amino acid moiety, are optimal candidates for CO2 capture. In the present work, two choline-amino acids ILs were synthesized, containing glycine and proline, according to an innovative procedure, overcoming some drawbacks proper of the classical methods. A throughout IR operando study of the CO2 absorption process in these amino acids based ILs was performed. Even though elementary reactions are the same for all the investigated systems, different absorption pathways were recognized depending on the amino acid based anion. The reversibility of the absorption process differs between the two systems as well, further remarking the role played by the selected amino acid in the overall absorption performances. Such fundamental information, still missing in the literature, will contribute to rationally develop choline-amino acids ILs with optimal CO2 absorption/activation properties.

Unraveling the CO2 reaction mechanism in bio-based amino-acid ionic liquids by operando ATR-IR spectroscopy

Signorile, M.;Crocellà, V.
;
Bordiga, S.
Last
2019-01-01

Abstract

Tackling global warming through the reduction of greenhouse gases is a key challenge mankind is called to face in the close future. Carbon dioxide is one of the main causes of such temperature increase, thus avoiding its release in the atmosphere through capture and/or utilization strategies is a valuable tool to limit greenhouse effect. Presently, the applied technology for sequestrating CO2 relies on its reaction with amines in aqueous solutions, giving rise to the formation of carbamates and carbonates. However, due to the energy intensive release step, toxicity and corrosiveness, amine scrubbing could not represent a long-term solution in CO2 capture. Ionic liquids (ILs), organic salts in the liquid state near room temperature, are a class of emerging materials with a great potential towards CO2 capture. Recently the combination of the choline cation with amino acids based anions gave rise to a wide set of bio-inspired ILs with low toxicity, that, due to the presence of amino groups in the amino acid moiety, are optimal candidates for CO2 capture. In the present work, two choline-amino acids ILs were synthesized, containing glycine and proline, according to an innovative procedure, overcoming some drawbacks proper of the classical methods. A throughout IR operando study of the CO2 absorption process in these amino acids based ILs was performed. Even though elementary reactions are the same for all the investigated systems, different absorption pathways were recognized depending on the amino acid based anion. The reversibility of the absorption process differs between the two systems as well, further remarking the role played by the selected amino acid in the overall absorption performances. Such fundamental information, still missing in the literature, will contribute to rationally develop choline-amino acids ILs with optimal CO2 absorption/activation properties.
2019
Inglese
Esperti anonimi
336
148
160
13
https://www.sciencedirect.com/science/article/pii/S0920586118307612?via=ihub
Amino acids; Ammonium-carbamate; Carbamic acid; CO2 capture; Ionic liquids; Operando ATR-IR spectroscopy; Catalysis; Chemistry (all)
no
1 – prodotto con file in versione Open Access (allegherò il file al passo 6 - Carica)
262
6
Latini, G.; Signorile, M.; Crocellà, V.*; Bocchini, S.; Pirri, C.F.; Bordiga, S.
info:eu-repo/semantics/article
partially_open
03-CONTRIBUTO IN RIVISTA::03A-Articolo su Rivista
File in questo prodotto:
File Dimensione Formato  
Open access_Latini_CatalTod_2019.pdf

Open Access dal 04/01/2021

Descrizione: Articolo principale
Tipo di file: POSTPRINT (VERSIONE FINALE DELL’AUTORE)
Dimensione 2.17 MB
Formato Adobe PDF
2.17 MB Adobe PDF Visualizza/Apri
Latini_CatTod_2019.pdf

Accesso riservato

Descrizione: Articolo principale
Tipo di file: PDF EDITORIALE
Dimensione 2.37 MB
Formato Adobe PDF
2.37 MB Adobe PDF   Visualizza/Apri   Richiedi una copia

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2318/1693755
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 28
  • ???jsp.display-item.citation.isi??? 23
social impact