CO<sub>2</sub> electroreduction to multicarbon products in strongly acidic electrolyte via synergistically modulating the local microenvironment.

Ma, Zesong; Yang, Zhilong; Lai, Wenchuan; Wang, Qiyou; Qiao, Yan; Tao, Haolan; Lian, Cheng; Liu, Min et al. · Nat Commun · 2022

basic_science · Level V

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Abstract

Electrochemical CO<sub>2</sub> reduction to multicarbon products faces challenges of unsatisfactory selectivity, productivity, and long-term stability. Herein, we demonstrate CO<sub>2</sub> electroreduction in strongly acidic electrolyte (pH ≤ 1) on electrochemically reduced porous Cu nanosheets by combining the confinement effect and cation effect to synergistically modulate the local microenvironment. A Faradaic efficiency of 83.7 ± 1.4% and partial current density of 0.56 ± 0.02 A cm<sup>-2</sup>, single-pass carbon efficiency of 54.4%, and stable electrolysis of 30 h in a flow cell are demonstrated for multicarbon products in a strongly acidic aqueous electrolyte consisting of sulfuric acid and KCl with pH ≤ 1. Mechanistically, the accumulated species (e.g., K<sup>+</sup> and OH<sup>-</sup>) on the Helmholtz plane account for the selectivity and activity toward multicarbon products by kinetically reducing the proton coverage and thermodynamically favoring the CO<sub>2</sub> conversion. We find that the K<sup>+</sup> cations facilitate C-C coupling through local interaction between K<sup>+</sup> and the key intermediate *OCCO.

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