Zhangyi Tao, Hao Yu, Shengming Li, Weijie Xia, Chao Wang, Xue Liu, Shiqi Zhang, Jian Ma, Xiaorong Zhu, Ming Ge, Sisi Liu, Xiaolei Yuan
Ammonia oxidation reaction (AOR) catalyzed by Pt faces sluggish kinetics due to poisoning by *NH x intermediates and N ad species. While the Oswin-Salomon (O–S) pathway is hindered by high N ad desorption barriers, the Gerischer-Maurer (G–M) mechanism circumvents N ad formation but is limited by high activation energies for *NH x dehydrogenation. In this study, PtZn alloys were synthesized by incorporating low-electronegativity Zn to precisely tune the electronic structure of Pt, resulting in significant enrichment of the d-electron density and a downshift of the d-band center. This electronic modulation weakens the Pt-*NH x bond strength, thereby optimizing the G–M pathway. As a result, the activation energy for the rate-limiting *NH 2 dehydrogenation step is notably reduced, promoting faster intermediate turnover and enhancing overall catalytic kinetics. Additionally, operando Raman spectroscopy directly reveals the formation of *N 2 H y species on Pt 33 Zn 1, providing compelling evidence that the optimized catalyst follows the G–M mechanism. Impressively, the optimized Pt 33 Zn 1 demonstrates exceptional AOR performance, achieving an onset potential of 0.49 V and a remarkable mass activity of 83.45 A g –1 (peak current density: 25.12 mA cm –2 ) at 5 mV s –1 . These values surpass those of commercial PtIr/C (40%) by 4-fold and 10-fold, respectively. This kinetic enhancement underscores the potential of Pt 33 Zn 1 as a high-performance AOR catalyst.