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Updated: Jan 21, 2026

Measurement of Ultrafast Vibrational Coherences in Polyatomic Radical Cations with Strong-Field Adiabatic Ionization
Published on: August 6, 2018
Electric-field-driven CO2 polarization and bioinspired proton blocking unlock CO2 reduction in strong acid without
Liwei Chen1, Zhenbin Guo2, Hui-Zi Huang2
1College of Biological and Chemical Engineering, Qilu Institute of Technology, Jinan, P. R. China. chenliwei@qlit.edu.cn.
Abstract:
Metal-cation-free CO2 electroreduction (CO2R) in strong acidic media mitigates CO2 reactant losses, eliminates the risk of metal salt precipitation, and broadens device tolerance compared to acidic, neutral, or alkaline system using metal cations. However, such an acidic environment still poses challenges due to the inert and nonpolar nature of CO2 and intensely competitive hydrogen evolution reaction. Inspired by aquaporins in acidophiles, we engineer sharp-triangle Au nanostructures capped with a hexadecyltrimethylammonium chloride (CTAC) layer enriched with cationic sites. The intense local electric fields generated by the high-curvature tips of Au nanocatalyst polarize CO2 molecules, increasing their dipole moment to facilitate adsorption and activation. Meanwhile, the CTAC layer acts as a proton barrier, suppressing HER by mimicking the proton-blocking mechanism of aquaporins. This dual-function design enables continuous CO2R for 100 hours in a flow electrolyzer at pH 1.0, achieving an energy efficiency of 60% and near-unity Faradaic efficiency for CO production. This bioinspired strategy represents a significant advancement in CO2R technology by integrating rational catalyst design principles.
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