过电位
析氧
催化作用
吸附
氧化物
氧气
密度泛函理论
材料科学
化学
化学工程
过渡金属
电解
光化学
电催化剂
活动站点
无机化学
电解水
协同催化
机制(生物学)
过氧化氢
多相催化
反应机理
纳米技术
生物物理学
作者
Liyao Tang,Tianpeng Zhang,Zhijie Cao,Lingxiao Li,Xuemei Li,Fangqing Wang,Hailin Cong
摘要
ABSTRACT The adsorbate evolution mechanism (AEM) is limited by the intrinsic linear scaling relationship, and the direct participation of lattice oxygen in the lattice oxygen oxidation mechanism (LOM) often induces structural degradation. To address this challenge, we introduced oxophilic Fe into NiOOH (Fe 0.6 NiOOH) to promote direct coupling of adsorbed oxygen species ( * O─O * ), thereby inducing the catalytic reaction to proceed via the oxide pathway mechanism (OPM). The oxophilic Fe‐doped catalyst Fe 0.6 NiOOH has a low overpotential of 199 mV at 10 mA cm −2 under alkaline conditions and maintains stable operation for over 1200 h at 1 A cm −2 with virtually no significant decay. Furthermore, the Pt/C||Fe 0.6 NiOOH electrode pair operated continuously for 1500 h at 1 A cm −2 in an anion‐exchange membrane electrolyzer (30 wt.% KOH, 80°C). Advanced in situ spectroscopy combined with density functional theory calculations confirmed that oxophilic Fe incorporation promotes * OH adsorption and shortens the Ni─O and Fe─O bonds, thereby facilitating the formation of * O radical and promoting the coupling of * O─O * , ultimately driving the OER pathway toward OPM. This work provides a new strategy for designing highly efficient and stable Ni‐based catalysts and also offers important insights into identifying the optimal reaction pathway for industrial water electrolysis.
科研通智能强力驱动
Strongly Powered by AbleSci AI