Corrosion engineering boosting bulk Fe50Mn30Co10Cr10 high-entropy alloy as high-efficient alkaline oxygen evolution reaction electrocatalyst

电催化剂 过电位 析氧 材料科学 塔菲尔方程 分解水 腐蚀 催化作用 化学工程 电化学 合金 高熵合金 纳米技术 冶金 电极 化学 物理化学 生物化学 光催化 工程类
作者
Pengfei Zhou,Dong Liu,Yuyun Chen,Mingpeng Chen,Yunxiao Liu,Shi Chen,Chi Tat Kwok,Yuxin Tang,Shuangpeng Wang,Hui Pan
出处
期刊:Journal of Materials Science & Technology [Elsevier BV]
卷期号:109: 267-275 被引量:71
标识
DOI:10.1016/j.jmst.2021.09.003
摘要

Oxygen evolution reaction (OER) is a critical process in electrocatalytic water splitting. However, the development of low-cost, highly efficient OER electrocatalysts by a simple method that can be used for industrial application on a large scale is still a huge challenge. Recently, high entropy alloy (HEA) has acquired extensive attention, which may provide answers to the current dilemma. Here, we report bulk Fe50Mn30Co10Cr10, which is prepared by 3D printing on a large scale, as electrocatalyst for OER with high catalytic performance. Especially, an easy approach, corrosion engineering, is adopted for the first time to build an active layer of honeycomb nanostructures on its surface, leading to ultrahigh OER performance with an overpotential of 247 mV to achieve a current density of 10 mA cm−2, a low Tafel slope of 63 mV dec−1, and excellent stability up to 60 h at 100 mA cm−2 in 1 M KOH. The excellent catalytic activity mainly originates from: (1) the binder-free self-supported honeycomb nanostructures and multi-component hydroxides, which improve intrinsic catalytic activity, provide rich active sites, and reduce interfacial resistance; and (2) the diverse valence states for multiple active sites to enhance the OER kinetics. Our findings show that corrosion engineering is a novel strategy to improve the bulk HEA catalytic performance. We expect that this work would open up a new avenue to fabricate large-scale HEA electrocatalysts by 3D printing and corrosion engineering for industrial applications.
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