双原子分子
铱
过电位
催化作用
化学
材料科学
电催化剂
化学物理
吸收光谱法
拉曼光谱
塔菲尔方程
联轴节(管道)
红外光谱学
色散(光学)
物理化学
等温过程
无机化学
同核分子
碘化物
铂金
吸收(声学)
氯
多相催化
渐近线
铑
分析化学(期刊)
作者
Kai Chen,Tao Yang,Jing Xu,Yuying Liu,H.-J. Wu,Yang Wang,Zhonghuai Wu,Zengxia Pei,Shihua Chen,Tianxiang Chen,Hao Tan,Zheng Zhou
摘要
ABSTRACT Chlorine evolution reaction underpins the chlor‐alkali industry, yet its conventional dimensionally stable anodes (DSAs) suffer from low noble‐metal utilization and limited intrinsic activity. Here, we report a molecularly precise strategy to construct atomically dispersed iridium diatomic (Ir 2 ) pairs anchored on MnO 2 nanorods (i.e., Ir 2 ─MnO 2 ), representing a well‐defined dual‐atom catalyst (DAC) for efficient chlorine electrosynthesis. Spherical aberration‐corrected microscopy and x‐ray absorption spectroscopy (XAS) validate the diatomic features of Ir 2 pairs with an interatomic distance of 3.16 Å. The Ir 2 ─MnO 2 electrocatalyst exhibits competitive CER performance, delivering an overpotential of 36.9 mV at 10 mA cm −2 and a low Tafel slope of 34.6 mV dec −1 in NaCl electrolyte. Kinetic analysis, operando Raman spectroscopy, and theoretical calculations collectively reveal that adjacent Ir–Ir dual‐atoms synergistically stabilize two *Cl intermediates, enabling a thermodynamically favored direct *Cl─*Cl coupling mechanism. Notably, Ir 2 ─MnO 2 maintains satisfactory selectivity and durability over 500 h at large current densities in natural seawater electrolysis. This work breaks the technical challenges of atomic‐scale dispersion and diatomic pairing of DACs, establishing diatomic site engineering as a powerful paradigm for efficient chlorine electrosynthesis.
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