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在三室流动反应器中耦合的三相界面上实现高效电催化氮还原用于常温常压合成氨

Efficient Electrocatalytic N Reduction on Three-Phase Interface Coupled in a Three-Compartment Flow Reactor for the Ambient NH Synthesis.

作者信息

Wei Xin, Pu Minghua, Jin Yiman, Wessling Matthias

机构信息

RWTH Aachen University, Chemical Process Engineering, Forckenbeckstrasse 51, 52074 Aachen, Germany.

DWI-Leibniz Institute for Interactive Materials, Forckenbeckstrasse 50, 52074 Aachen, Germany.

出版信息

ACS Appl Mater Interfaces. 2021 May 12;13(18):21411-21425. doi: 10.1021/acsami.1c03698. Epub 2021 Apr 28.

Abstract

The electrochemical N reduction reaction (eNRR) represents a carbon-free alternative to the Haber-Bosch process for a sustainable NH synthesis powered by renewable energy under ambient conditions. Despite significant efforts to develop catalyst activity and selectivity toward eNRR, an appropriate electrochemical system to obstruct the drawback of low N solubility remains broadly unexplored. Here, we demonstrate an electrocatalytic system combining a ruthenium/carbon black gas diffusion electrode (Ru/CB GDE) with a three-compartment flow cell, enabling solid-liquid-gas catalytic interfaces for the highly efficient Ru-catalyzed eNRR. The electrolyte optimization and the Ru/CB GDE development through the hydrophobicity, the Ru/CB loading, and the post-treatment have revealed the crucial contribution of interfacial N transportation and local pH environment. The optimized hydrophobic Ru/CB GDE generated excellent eNRR performance, achieving a high NH yield rate of 9.9 × 10 mol/cm s at -0.1 V vs RHE, corresponding to the highest faradaic efficiency of 64.8% and a specific energy efficiency of 40.7%, exceeding the most reported system. This work highlights the critical role of design and optimization of the GDE-flow cell combination and provides a valuable practicable solution to enhance the electrochemical reaction involving gas-phase reactants with low solubility.

摘要

电化学氮还原反应(eNRR)代表了一种无碳替代哈伯-博施法的方法,可在环境条件下由可再生能源驱动实现可持续的氨合成。尽管人们为提高催化剂对eNRR的活性和选择性付出了巨大努力,但一种合适的电化学系统来克服低氮溶解度的缺点仍未得到广泛探索。在此,我们展示了一种将钌/炭黑气体扩散电极(Ru/CB GDE)与三室流动池相结合的电催化系统,实现了固-液-气催化界面,用于高效的Ru催化eNRR。通过疏水性、Ru/CB负载量和后处理对电解质进行优化以及开发Ru/CB GDE,揭示了界面氮传输和局部pH环境的关键作用。优化后的疏水性Ru/CB GDE展现出优异的eNRR性能,在相对于可逆氢电极(RHE)为-0.1 V时,实现了9.9×10⁻⁶ mol/cm²·s的高氨产率,对应最高法拉第效率为64.8%,比能量效率为40.7%,超过了大多数已报道的系统。这项工作突出了GDE-流动池组合设计和优化的关键作用,并为增强涉及低溶解度气相反应物的电化学反应提供了一个有价值的实用解决方案。

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