Enhancing Low‐Concentration Electroreduction of NO to NH3 via Potential‐Controlled Active Site‐Intermediate Interactions

活动站点 产量(工程) 法拉第效率 电化学 催化作用 电极 电解 电极电位 化学物理 材料科学 化学 纳米技术 电解质 物理化学 有机化学 冶金
作者
Xiaoxi Guo,Tongwei Wu,Hengfeng Li,Liyuan Chai,Min Liu
出处
期刊:Angewandte Chemie [Wiley]
卷期号:64 (8): e202420346-e202420346 被引量:13
标识
DOI:10.1002/anie.202420346
摘要

Electronic defect states in catalysts are recognized as highly effective active sites for enhancing the low-concentration electroreduction of NO to NH3 (NORR). Their structures dynamically evolve with applied electrode potentials, allowing the active sites to adjust interactions with intermediates, thereby improving electrocatalytic performance. However, the dynamic changes in these interactions under applied potentials remain poorly understood, hindering the design of more diverse electrocatalytic systems. Herein, we developed a strategy that unitizes electrode potential to control the interactions between active sites and intermediates over oxygen vacancy-modified TiO2 (VO-TiO2-x) to enhance NORR performance. By combining state-of-the-art constant inner potential (CIP) DFT calculations with in situ (spectro)electrochemical measurements, we investigated how the electrode potential influences these interactions in NORR. The results clearly demonstrate that applying an external potential alters the spatial symmetry of degenerate orbitals of Ti3+ to facilitate the generation of key intermediates for NO-to-NH3 conversion. Therefore, the VO-TiO2-x catalyst exhibited superior NORR performance with a NH3 Faradaic efficiency up to 76.4 % and a high NH3 yield rate of 632.9 μg h-1 mgcat. -1 under 1.0 vol % NO atmosphere, which is competitive with those of previously reported works under higher NO concentration (above 10 vol %). Remarkably, the NORR process achieved a record-breaking NH3 yield of 2292.7 μg h-1 mgcat. -1 in a membrane electrode assembly (MEA) electrolyzer under the same conditions. This study opens a new avenue for enhancing electrocatalytic activity by adjusting operating conditions, thereby transcending the limitations of material design.
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