Sulfonated Silica Particles as Proton-Conductive Porous Solid Electrolytes for CO2 Electrolysis

Abdullah Alazmi, Ahmad Elgazzar, Safiya Khalil, Ravindra Saxena, Tae Ung Wi, Eugene McCarty, Haotian Wang, Rafael Verduzco

Research output: Contribution to journalArticlepeer-review

Abstract

The carbon dioxide reduction reaction (CO2RR) offers a promising route for converting CO2 to valuable chemical feedstocks, addressing both environmental and industrial needs. However, liquid fuels and chemicals produced through the CO2RR typically contain dissolved aqueous electrolytes, necessitating additional separation processes. Electrochemical CO2RR reactors that utilize porous solid electrolytes (PSEs) can produce liquid fuels and chemicals free of aqueous electrolytes, but new materials capable of ionic conduction and with sufficient porosity for water flow are needed. In this work, we report silica-based particles that can be used as a PSE for CO2 electrolysis. These particles were produced by grafting sulfonated silane ligands onto mesoporous silica particles. We investigated two different sulfonated ligands, 2-(4-chlorosulfonylphenyl)-ethyltrimethoxysilane and 3-(trimethoxysilyl)propane-1-sulfonic acid, and varied the particle size from 20 nm to 40 μm to elucidate their impact on ionic conductivity and performance in a continuous-flow CO2 electrolyzer. The ionic conductivity of the particles improved with decreasing particle size, and the most conductive particles achieved ionic conductivities as high as 5.31 × 10-2 S cm-1. We also found a trade-off between flow stability and particle size, with smaller particles being more susceptible to dissolution and dispersion in water, resulting in clogging of the flow reactor. Incorporation of silica PSEs in a CO2 electrolyzer produced a Faradaic efficiency greater than 90% toward formic acid. This work demonstrates a novel approach to porous solid-state electrolytes with a wide array of applications, including, but not limited to, CO2 electrolysis.

Original languageEnglish (US)
Pages (from-to)28181-28187
Number of pages7
JournalACS Applied Materials and Interfaces
Volume17
Issue number19
DOIs
StatePublished - May 14 2025

Keywords

  • CO electrolysis
  • CO reduction
  • electrolyzer
  • ionic conductivity
  • solid electrolytes
  • sulfonated silica

ASJC Scopus subject areas

  • General Materials Science

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