Acrylic acid is widely used in the chemical, polymer, cosmetic and food industries. Typically, it is produced through processes with a high environmental impact. In this paper, we demonstrate the co-production of the potassium acrylate salt and hydrogen gas from allyl alcohol in a liquid flow fed anion exchange membrane electrolysis cell operating at 60 °C and ambient pressure. We compare in electrolysis cell tests, two electrocatalysts Pd/C and Pd-CeO2/C evaluating the activity and selectivity for acrylate production. Electrolysis cell parameters are tuned obtaining a maximum conversion of allyl alcohol of 96% and a selectivity to acrylate of 50% at an operating cell voltage of 1 V. Operating at a lower cell potential (0.7 V) the selectivity for acrylate increases to 74%. Hydrogen gas is produced in the separated cathode compartment at an energy cost of 26 KWh kgH2-1, which is around half when compared to state-of-the-art water electrolyzers. The electrochemical oxidation mechanism of allyl alcohol is also studied and discussed, providing for the first time an insight into the pathways for formation of acrylate with respect to the other principle oxidation products (propionate and 3-hydroxypropionate).

Electrochemical reactor for sustainable transformation of bio-mass derived allyl alcohol into acrylate and pure hydrogen

Maria Vincenza Pagliaro;Hamish Andrew Miller;Marco Bellini;Werner Oberhauser;Francesco Vizza
2021

Abstract

Acrylic acid is widely used in the chemical, polymer, cosmetic and food industries. Typically, it is produced through processes with a high environmental impact. In this paper, we demonstrate the co-production of the potassium acrylate salt and hydrogen gas from allyl alcohol in a liquid flow fed anion exchange membrane electrolysis cell operating at 60 °C and ambient pressure. We compare in electrolysis cell tests, two electrocatalysts Pd/C and Pd-CeO2/C evaluating the activity and selectivity for acrylate production. Electrolysis cell parameters are tuned obtaining a maximum conversion of allyl alcohol of 96% and a selectivity to acrylate of 50% at an operating cell voltage of 1 V. Operating at a lower cell potential (0.7 V) the selectivity for acrylate increases to 74%. Hydrogen gas is produced in the separated cathode compartment at an energy cost of 26 KWh kgH2-1, which is around half when compared to state-of-the-art water electrolyzers. The electrochemical oxidation mechanism of allyl alcohol is also studied and discussed, providing for the first time an insight into the pathways for formation of acrylate with respect to the other principle oxidation products (propionate and 3-hydroxypropionate).
2021
Istituto di Chimica dei Composti OrganoMetallici - ICCOM -
Inglese
525
120488
120488
8
https://www.sciencedirect.com/science/article/pii/S0020169321002449
Esperti anonimi
hydrogen
Electrochemical reforming
electrolysis
Pd-CeO2/C
acrylic acid
allyl alcohol
8
info:eu-repo/semantics/article
262
Pagliaro, MARIA VINCENZA; Miller, HAMISH ANDREW; Bellini, Marco; Di Vico, Benedetto; Oberhauser, Werner; Zangari, Giovanni; Innocenti, Massimo; Vizza,...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
partially_open
   FISR 2019 AMPERE
   AMPERE
   Ministero dell'Università e della Ricerca
   FISR 2019
   FISR2019_01294

   PRIN 2017
   PRIN 2017
   Ministero dell'Università e della Ricerca
   PRIN 2017
   2017YH9MRK
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Descrizione: Electrochemical reactor for sustainable transformation of bio-mass derived allyl alcohol into acrylate and pure hydrogen
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Descrizione: “This document is the Accepted Manuscript version of a Published Work that appeared in final form in https://doi.org/10.1016/j.ica.2021.120488."
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/400477
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