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用于促进水氧化反应的异位重构型铱/氧化钴/钙钛矿异质结

Ex Situ Reconstruction-Shaped Ir/CoO/Perovskite Heterojunction for Boosted Water Oxidation Reaction.

作者信息

Guo Hongquan, Yang Yanling, Yang Guangming, Cao Xiaojuan, Yan Ning, Li Zhishan, Chen Emily, Tang Lina, Peng Meilan, Shi Lei, Xie Shunji, Tao Huabing, Xu Chao, Zhu Yinlong, Fu Xianzhu, Pan Yuanming, Chen Ning, Lin Jinru, Tu Xin, Shao Zongping, Sun Yifei

机构信息

College of Energy, Xiamen University, Xiamen 361005, China.

State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing 211816, China.

出版信息

ACS Catal. 2023 Mar 29;13(7):5007-5019. doi: 10.1021/acscatal.2c05684. eCollection 2023 Apr 7.

Abstract

The oxygen evolution reaction (OER) is the performance-limiting step in the process of water splitting. In situ electrochemical conditioning could induce surface reconstruction of various OER electrocatalysts, forming reactive sites dynamically but at the expense of fast cation leaching. Therefore, achieving simultaneous improvement in catalytic activity and stability remains a significant challenge. Herein, we used a scalable cation deficiency-driven exsolution approach to ex situ reconstruct a homogeneous-doped cobaltate precursor into an Ir/CoO/perovskite heterojunction (SCI-350), which served as an active and stable OER electrode. The SCI-350 catalyst exhibited a low overpotential of 240 mV at 10 mA cm in 1 M KOH and superior durability in practical electrolysis for over 150 h. The outstanding activity is preliminarily attributed to the exponentially enlarged electrochemical surface area for charge accumulation, increasing from 3.3 to 175.5 mF cm. Moreover, density functional theory calculations combined with advanced spectroscopy and O isotope-labeling experiments evidenced the tripled oxygen exchange kinetics, strengthened metal-oxygen hybridization, and engaged lattice oxygen oxidation for O-O coupling on SCI-350. This work presents a promising and feasible strategy for constructing highly active oxide OER electrocatalysts without sacrificing durability.

摘要

析氧反应(OER)是水分解过程中的性能限制步骤。原位电化学处理可诱导各种OER电催化剂的表面重构,动态形成反应位点,但代价是快速的阳离子浸出。因此,同时提高催化活性和稳定性仍然是一个重大挑战。在此,我们采用了一种可扩展的阳离子缺陷驱动析出方法,将均匀掺杂的钴酸盐前驱体异位重构为Ir/CoO/钙钛矿异质结(SCI-350),用作活性和稳定的OER电极。SCI-350催化剂在1 M KOH中,电流密度为10 mA cm时,过电位低至240 mV,在实际电解中具有超过150小时的优异耐久性。其出色的活性初步归因于电荷积累的电化学表面积呈指数级增大,从3.3增加到175.5 mF cm。此外,密度泛函理论计算结合先进光谱和O同位素标记实验证明,SCI-350上的氧交换动力学增加了两倍,金属-氧杂化增强,并且参与晶格氧氧化以实现O-O耦合。这项工作为构建高活性氧化物OER电催化剂且不牺牲耐久性提供了一种有前景且可行的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b189/10088023/b2c2b19b7ca6/cs2c05684_0002.jpg

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