化学
催化作用
氧化还原
氰酸盐
无机化学
选择性
反应机理
氧气
镍
析氧
吸附
密度泛函理论
氢
亚硝酸盐
半反应
反应条件
反应中间体
尿素
工作(物理)
机制(生物学)
动力学
作者
Kyu In Shim,Jiseon Kim,Miyeon Kim,Kangwoo Cho,Jeong Woo Han
摘要
ABSTRACT The urea oxidation reaction (UOR) is a promising alternative to the oxygen evolution reaction (OER) for sustainable hydrogen production due to its lower onset potential. However, the reasons behind this advantage remain unclear, with inconsistencies in the literature regarding the UOR mechanism. Previously, UOR was mostly believed to proceed via a six‐electron pathway producing N 2 and CO 2 , but this assumption lacked experimental and theoretical validation. Here, the UOR mechanism is thoroughly re‐evaluated by integrating experimental observations and density functional theory calculations on β‐NiOOH catalyst as a model system. Experimentally, significant UOR current densities of 100 and 500 mA cm −2 were achieved at potentials of 1.40 and 1.53 V RHE, respectively, outperforming the OER, which required 1.79 V RHE at 500 mA cm −2 . Theoretical calculations reveal that oxygen vacancies are thermodynamically favored and serve as preferential adsorption sites for urea, with a significantly lower energy barrier (1.49 eV) compared to the OER (3.25 eV). OCN − and NO 2 − were identified as the primary reaction products, which were also confirmed experimentally. This work not only clarifies the UOR pathway and the critical role of oxygen vacancies in enhancing reaction selectivity and efficiency but also resolves longstanding mechanistic ambiguities, providing a foundation for the rational design of advanced electrocatalysts for efficient hydrogen production and environmental remediation.
科研通智能强力驱动
Strongly Powered by AbleSci AI