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◆ ACS Catalysis2026-01-29· Catalysis

Solid-State K <sup>+</sup> Coordination Modulates Electronic Structure of Ni–N <sub>3</sub> Single-Atom Catalysts for CO <sub>2</sub> Electroreduction

Wendong Wang, Xingwen Cha, Longmei Shang, Kang Sun, Fangsong Guo, Jianchun Jiang, Guowu Zhan

原始摘要(英文原文)· Original abstract
This work demonstrates a strategic shift from dynamic electrolyte modulation to static, intrinsic promotion of the CO 2 reduction reaction by stably integrating alkali metal cations as a solid-state component within a heterogeneous catalyst. To address the persistent challenge of alkali metal ion leaching due to high aqueous solubility, we immobilize K + cations into a carbon nitride framework (Ni@K–C 3 N 4 ) hosting atomically dispersed Ni–N 3 sites via an ionothermal strategy. Structural confinement through coordination with nitrogen sites in the C 3 N 4 matrix effectively suppresses K + leaching, enabling sustained electronic regulation of the Ni centers. Combined experimental and theoretical analyses reveal that K + incorporation attenuates d-π conjugation, promotes electron localization around Ni sites, and stabilizes low-valent Ni δ+ species. This electronic reconfiguration enhances CO 2 adsorption and activation while suppressing competitive hydrogen evolution reaction. The optimized Ni@K–C 3 N 4 catalyst achieves a CO Faradaic efficiency of 95% at −0.74 V vs RHE, a current density of ∼20 mA·cm –2, and stable operation over 50 h. Notably, it maintains >80% CO selectivity under a diluted CO 2 atmosphere (40%), highlighting its practicality for real low-concentration streams. This work establishes a polymer-functionalization strategy for precise electronic tuning of single-atom catalysis, advancing the design of efficient CO 2 utilization systems.
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Solid-State K <sup>+</sup> Coordination Modulates Electronic Structure of Ni–N <sub>3</sub> Single-Atom Catalysts for CO <sub>2</sub> Electroreduction — 科研速览 Science Skim