In-situ spectroscopic observation of dynamic-coupling oxygen on atomically dispersed iridium electrocatalyst for acidic water oxidation

电催化剂 析氧 过电位 电化学 离解(化学) 光化学 化学 催化作用 无机化学 电极 物理化学 生物化学
作者
Hui Su,Wanlin Zhou,Wu Zhou,Yuanli Li,Lirong Zheng,Hui Zhang,Meihuan Liu,Xiuxiu Zhang,Xuan Sun,Yanzhi Xu,Fengchun Hu,Jing Zhang,Tiandou Hu,Qinghua Liu,Shiqiang Wei
出处
期刊:Nature Communications [Nature Portfolio]
卷期号:12 (1): 6118-6118 被引量:362
标识
DOI:10.1038/s41467-021-26416-3
摘要

Abstract Uncovering the dynamics of active sites in the working conditions is crucial to realizing increased activity, enhanced stability and reduced cost of oxygen evolution reaction (OER) electrocatalysts in proton exchange membrane electrolytes. Herein, we identify at the atomic level potential-driven dynamic-coupling oxygen on atomically dispersed hetero-nitrogen-configured Ir sites (AD-HN-Ir) in the OER working conditions to successfully provide the atomically dispersed Ir electrocatalyst with ultrahigh electrochemical acidic OER activity. Using in-situ synchrotron radiation infrared and X-ray absorption spectroscopies, we directly observe that one oxygen atom is formed at the Ir active site with an O-hetero-Ir-N 4 structure as a more electrophilic active centre in the experiment, which effectively promotes the generation of key *OOH intermediates under working potentials; this process is favourable for the dissociation of H 2 O over Ir active sites and resistance to over-oxidation and dissolution of the active sites. The optimal AD-HN-Ir electrocatalyst delivers a large mass activity of 2860 A g metal −1 and a large turnover frequency of 5110 h −1 at a low overpotential of 216 mV (10 mA cm −2 ), 480–510 times larger than those of the commercial IrO 2 . More importantly, the AD-HN-Ir electrocatalyst shows no evident deactivation after continuous 100 h OER operation in an acidic medium.
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