Applied Catalysis2022,Vol.31011.DOI:10.1016/j.apcatb.2022.121362

Regulating the reaction zone of electrochemical CO2 reduction on gas-diffusion electrodes by distinctive hydrophilic-hydrophobic catalyst layers

Hesamoddin Rabiee Lei Ge Jing Zhao
Applied Catalysis2022,Vol.31011.DOI:10.1016/j.apcatb.2022.121362

Regulating the reaction zone of electrochemical CO2 reduction on gas-diffusion electrodes by distinctive hydrophilic-hydrophobic catalyst layers

Hesamoddin Rabiee 1Lei Ge 2Jing Zhao1
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作者信息

  • 1. Australian Centre for Water and Environmental Biotechnology (ACWEB, formerly AWMC), The University of Queensland, St Lucia, Queensland 4072, Australia
  • 2. Centre for Future Materials, University of Southern Queensland, Springfield Central, QLD 4300, Australia
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Abstract

Regulating the rational wettability on gas-diffusion electrodes (GDEs) plays a pivotal role to improve the efficiency of CO2RR via fine-tuning the reaction zone and boosting the formation of triple-phase interfaces. Herein, we present a wettability regulation strategy that modulates the triple-phase reaction zone in the catalyst layer of GDEs. This strategy was employed on a flow-through hollow fiber GDE coated with a Bi-embedded catalyst layer. Compared to other ex-situ methods (e.g., adding wetting agents) affecting the bulk of electrocatalysts or catalyst layer, we create distinctive hydrophilic-hydrophobic regions within the catalyst layer. Catalyst layer with hydrophilic-hydrophobic regions outperforms the fully hydrophilic one by facilitating the species transport, boosting triple-phase interface formation, and maximizing the active sites. This regulation strategy showed stable wettability during CO2RR cathodic conditions, evidenced by the direct measurement of penetration depth. The electrode with the regulated wettability exhibited over 80% catalyst utilization and 4 times higher formate partial current density (-150 mA cm~(-2) with FE_(formate)> 90%) compared to the untreated electrode, outperforming other GDEs employed for CO2RR to formate in the same concentrations of bicarbonate. The finding of this versatile microenvironment regulation strategy can be extended to GDEs used for other gas-phase reactions.

Key words

Electrochemical CO2 reduction/Gas-diffusion electrode/Hollow fiber/Microenvironment regulation/Formate production

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出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量17
参考文献量61
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