Li Min, Verkuil Jarco, Bunea Sorin, Kortlever Ruud, Urakawa Atsushi
Catalysis Engineering, Department of Chemical Engineering, Delft University of Technology, Van der Maasweg 9, 2629 HZ, Delft, The Netherlands.
Process & Energy Department, Faculty of Mechanical, Maritime and Materials Engineering, Large-Scale Energy Storage, Delft University of Technology, Leeghwaterstraat 39, 2628 CB, Delft, The Netherlands.
ChemSusChem. 2023 Nov 22;16(22):e202300949. doi: 10.1002/cssc.202300949. Epub 2023 Aug 25.
Direct electroreduction of nitric oxide offers a promising avenue to produce valuable chemicals, such as ammonia, which is an essential chemical to produce fertilizers. Direct ammonia synthesis from NO in a polymer electrolyte membrane (PEM) electrolyzer is advantageous for its continuous operation and excellent mass transport characteristics. However, at a high current density, the faradaic efficiency of NO electroreduction reaction is limited by the competing hydrogen evolution reaction (HER). Herein, we report a CO-mediated selective poisoning strategy to enhance the faradaic efficiency (FE) towards ammonia by suppressing the HER. In the presence of only NO at the cathode, Pt/C and Pd/C catalysts showed a lower FE towards NH than to H due to the dominating HER. Cu/C catalyst showed a 78 % FE towards NH at 2.0 V due to the stronger binding affinity to NO* compared to H*. By co-feeding CO, the FE of Cu/C catalyst towards NH was improved by 12 %. More strikingly, for Pd/C, the FE towards NH was enhanced by 95 % with CO co-feeding, by effectively suppressing HER. This is attributed to the change of the favorable surface coverage resulting from the selective and competitive binding of CO* to H* binding sites, thereby improving NH selectivity.
一氧化氮的直接电还原为生产有价值的化学品提供了一条有前景的途径,比如氨,氨是生产肥料的重要化学品。在聚合物电解质膜(PEM)电解槽中由一氧化氮直接合成氨具有连续运行和优异传质特性的优势。然而,在高电流密度下,一氧化氮电还原反应的法拉第效率受到竞争性析氢反应(HER)的限制。在此,我们报道一种CO介导的选择性中毒策略,通过抑制析氢反应来提高氨合成的法拉第效率(FE)。在阴极仅存在一氧化氮的情况下,由于析氢反应占主导,Pt/C和Pd/C催化剂对氨的法拉第效率低于对氢的法拉第效率。由于与H相比对NO具有更强的结合亲和力,Cu/C催化剂在2.0 V时对氨的法拉第效率为78%。通过共进料CO,Cu/C催化剂对氨的法拉第效率提高了12%。更引人注目的是,对于Pd/C,通过有效抑制析氢反应,共进料CO时对氨的法拉第效率提高了95%。这归因于CO与H结合位点的选择性和竞争性结合导致的有利表面覆盖度的变化,从而提高了氨的选择性。