过电位
催化作用
材料科学
铱
析氧
分解水
钴
纳米技术
氢
氧气
三原子分子
化学工程
纳米针
氧化物
铑
化学物理
工作(物理)
氢氧化物
密度泛函理论
金属
作者
Zhen Zhang,Shilong Wen,Yì Wáng,Xiaoman Luo,Xikui Liu
摘要
ABSTRACT The development of stable, active, and well‐defined electrocatalysts for water oxidation is vital for large‐scale green hydrogen production. However, the inherent trade‐off between activity and stability of electrocatalysts imposes fundamental limitations on their practical applications. Herein, we fabricated a molecularly precise triatomic catalyst featuring highly dispersed atomic iridium (14.3 wt.%) along with dense atomic cobalt grippers (10.4 wt.%) anchored on a Salphen‐fused nanoribbon (Co 2 Ir‐SNR), enabling highly effective and durable oxygen evolution reaction (OER). In situ infrared spectroscopy together with theoretical calculations reveals that the Co 2 Ir‐SNR follows the infrequent oxide path mechanism (OPM) with a reduced energy barrier, where the active iridium sites confined in two cobalt grippers promote direct O−O radical coupling for O 2 evolution. Consequently, the triatomic catalyst achieves a remarkable overpotential of 212 ± 3 mV at 10 mA cm −2 and possesses durability with stable operation for up to 1000 h at an ampere‐level current density under alkaline conditions. This work presents a viable strategy to break the activity‐stability dilemma encountered in OER, providing crucial guidance for developing catalysts that withstand the stringent requirements of industrial hydrogen production.
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