Porous Two-dimensional Iron-Cyano Nanosheets for High-rate Electrochemical Nitrate Reduction.
basic_science · Level V
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- Record sourced from PubMed, PMID 34919376.
- Also identified by DOI 10.1021/acsnano.1c08814.
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Abstract
Ammonia (NH<sub>3</sub>) is an essential ingredient in agriculture and a promising source of clean energy as a hydrogen carrier. The current major method for ammonia production, however, is the Haber-Bosch process that leads to massive energy consumption and severe environmental issues. Compared with nitrogen (N<sub>2</sub>) reduction, electrochemical nitrate reduction reaction (NO<sub>3</sub>RR), with a higher NH<sub>3</sub> yield rate and Faradaic efficiency, holds promise for efficient NH<sub>3</sub> production under ambient conditions. To achieve efficient NO<sub>3</sub>RR, electrocatalysts should exhibit high selectivity and Faradaic efficiency with a high NH<sub>3</sub> yield rate. In this work, we developed two-dimensional (2D) iron-based cyano-coordination polymer nanosheets (Fe-cyano NSs) following <i>in situ</i> electrochemical treatment for high-rate NO<sub>3</sub>RR. Owing to the strong adsorption of nitrate on Fe<sup>0</sup> active sites generated <i>via</i> topotactic conversion and <i>in situ</i> electroreduction, 2D Fe-cyano electrocatalyst exhibits high catalytic activity with a yield rate of 42.1 mg h<sup>-1</sup> mg<sub>cat</sub><sup>-1</sup> and a Faradaic efficiency of over 90% toward NH<sub>3</sub> production at -0.5 V (<i>vs</i> reversible hydrogen electrode, RHE). Further electrochemical characterizations revealed that superhydrophilic surface and enhanced electrochemical surface area of the 2D porous nanostructures also contributed to the high-rate NO<sub>3</sub>RR activity. An electrolyzer toward NO<sub>3</sub>RR and oxygen evolution reaction (OER) in a two-electrode configuration is constructed based on 2D Fe-cyano, achieving an energy efficiency of 26.2%. This work provides an alternative methodology toward topotactic conversion of transition metal nanosheets for NO<sub>3</sub>RR and reveals the often-overlooked contribution of hydrophilicity of the catalysts for high-rate electrocatalysis.