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通过氮还原和氢氧化连续流动电合成氨。

Continuous-flow electrosynthesis of ammonia by nitrogen reduction and hydrogen oxidation.

机构信息

Department of Physics, Technical University of Denmark, Kongens Lyngby, Denmark.

出版信息

Science. 2023 Feb 17;379(6633):707-712. doi: 10.1126/science.adf4403. Epub 2023 Feb 16.

Abstract

Ammonia is a critical component in fertilizers, pharmaceuticals, and fine chemicals and is an ideal, carbon-free fuel. Recently, lithium-mediated nitrogen reduction has proven to be a promising route for electrochemical ammonia synthesis at ambient conditions. In this work, we report a continuous-flow electrolyzer equipped with 25-square centimeter-effective area gas diffusion electrodes wherein nitrogen reduction is coupled with hydrogen oxidation. We show that the classical catalyst platinum is not stable for hydrogen oxidation in the organic electrolyte, but a platinum-gold alloy lowers the anode potential and avoids the decremental decomposition of the organic electrolyte. At optimal operating conditions, we achieve, at 1 bar, a faradaic efficiency for ammonia production of up to 61 ± 1% and an energy efficiency of 13 ± 1% at a current density of -6 milliamperes per square centimeter.

摘要

氨是肥料、制药和精细化学品的重要组成部分,也是一种理想的无碳燃料。最近,锂介导的氮还原已被证明是在环境条件下电化学合成氨的一种很有前途的途径。在这项工作中,我们报告了一种配备 25 平方厘米有效面积气体扩散电极的连续流动电解槽,其中氮还原与氢氧化耦联。我们表明,经典的催化剂铂在有机电解质中不稳定,不能用于氢氧化,但铂金合金降低了阳极电势,避免了有机电解质的递减分解。在最佳操作条件下,我们在 1 巴的压力下实现了高达 61±1%的氨生产法拉第效率和-6 毫安/平方厘米的电流密度下 13±1%的能量效率。

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