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Table · dataset · 2026

Data Sheet 1_Hierarchically porous Co–N–C catalysts from bimetallic Zn/Co zeolitic imidazolate frameworks for selective CO2 electroreduction to CO.pdf

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<p>The conversion of CO<sub>2</sub> to CO using electrochemistry requires the use of earth abundant catalysts with high selectivity, rapid reaction rate, and durability.

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In this work, hierarchically porous Co–N–C catalysts were synthesized via co-pyrolysis of a bimetallic zeolitic imidazolate framework (Zn/Co) and the dicyandiamide (DCD) followed by acid etching. By systematically adjusting the pyrolysis temperature (800 °C–1,000 °C) and the Co feed ratio (5–20 mol%), volcano-type activity relationships are found, which are controlled by the interplay of the three factors graphitization, nitrogen retention, and the density of Co–N<sub>x</sub> sites.

The optimized catalyst CoNC-900 achieves a Faradaic efficiency of CO of 94.9% ± 1.0% at −0.75 V vs. RHE in CO<sub>2</sub>-saturated 0.5 M KHCO<sub>3</sub> with a CO partial current density of 16.0 mA cm<sup>−2</sup>, a lower bound turnover frequency of ≥0.33 s<sup>−1</sup> and ≈11% current decay FE_CO retained above 92% over 24 h. The observed selectivity can be rationalized, as the density functional theory calculations indicate that the barrier of the rate-determining step, namely the formation of COOH is lowered on the Co–N<sub>4</sub> moiety (0.42 eV, whereas ≥1.79 eV on the metal-free nitrogen sites).

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A transferable design rule is developed for CO<sub>2</sub> electrolysis that relates bimetallic MOF precursor chemistry, hierarchical porosity, and M–N<sub>x</sub> site engineering.</p>

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Density functional theory 75%
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