Efficient CO electrosynthesis in hydroxide-mediated reactive capture systems through catalyst and microenvironment design
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Elsevier
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The electrochemical conversion of captured CO2 – also known as reactive capture – offers a promising approach to produce renewable carbon monoxide (CO) while bypass the energy and cost-intensive CO2 capture, purification and pressurization processes at large scale. However, current reactive capture systems suffer from low CO selectivity (< 50 %) and productivity (< 100 mA cm⁻2) due to the lack of efficient electrocatalysts and limited CO2 availability at the reactive interfaces. Here, we develop a coupled catalyst and microenvironment strategy to overcome these barriers. Employing Ni single-atom catalysts with a high density of reactive sites (Ni loading up to 3.0 wt%), together with enhanced CO2 regeneration and transport to the catalyst via local hydrophobicity control, we achieved efficient CO production with a Faradaic efficiency of 68 % at 100 mA cm⁻2 with stable performance maintained over 100 h in a hydroxide-mediated reactive capture system. The system achieved a CO energy efficiency of 27 % and an energy intensity of 37.7 GJ ton⁻¹CO, outperforming the best reported amine- and hydroxide-based reactive capture processes operating at ambient temperature and pressure. © 2025 The Authors. Published by Elsevier B.V. Open Access CC BY 4.0.
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Wang, C., Qi, M., Zheng, Z., Zheng, X., Li, S., Li, P., Ma, T., Johannessen, B., Cao, Y., Yi, J., Yu, H., Zeng, J., & Zhao, Y. (2026). Efficient CO electrosynthesis in hydroxide-mediated reactive capture systems through catalyst and microenvironment design. Applied Catalysis B: Environment and Energy, 383, 126068. doi:10.1016/j.apcatb.2025.126068