Hierarchical NiCo2Se4 Arrays Composed of Atomically Thin Nanosheets: Simultaneous Improvements in Thermodynamics and Kinetics for Electrocatalytic Water Splitting in Neutral Media

过电位 纳米片 析氧 分解水 材料科学 纳米结构 电催化剂 纳米技术 普鲁士蓝 动力学 化学工程 催化作用 电化学 电极 化学 物理化学 物理 量子力学 工程类 生物化学 光催化
作者
Hongyu Chen,Yongsheng Xu,Xiaojie Li,Qing Ma,Delong Xie,Yi Mei,Guojing Wang,Yuanzhi Zhu
出处
期刊:Advanced Science [Wiley]
卷期号:11 (31) 被引量:4
标识
DOI:10.1002/advs.202402889
摘要

Abstract The inefficiency of electrocatalysts for water splitting in neutral media stems from a comprehensive impact of poor intrinsic activity, a limited number of active sites, and inadequate mass transport. Herein, hierarchical ultrathin NiCo 2 Se 4 nanosheets are synthesized by the selenization of NiCo 2 O 4 porous nanoneedles. Theoretical and experimental investigations reveal that the intrinsic hydrogen evolution reaction (HER) activity primarily originate from the NiCo 2 Se 4 , whereas the high oxygen evolution reaction (OER) performance is related to the NiCoOOH due to the structural reconstruction. The abundant Se and O vacancies introduced by atomically thin nanostructure modulate the electronic structure of NiCo 2 Se 4 and NiCoOOH, thereby improving the intrinsic HER and OER activities, respectively. COMSOL simulation demonstrate the edges of extended nanosheets from the main body significantly promote the charge aggregation, boosting the reduction and oxidation current during HER/OER process. This charge aggregation effect notably exceeds the tip effect for the nanoneedle, highlighting the unique advantage of the hierarchical nanosheet structure. Benefiting from abundant vacancies and unique nanostructure, the hierarchical ultrathin nanosheet simultaneously improve the thermodynamics and kinetics of the electrocatalyst. The optimized samples display an overpotential of 92 mV for HER and 214 mV for OER at 100 mA cm −2 , significantly surpassing the performance of currently reported HER/OER catalysts in neutral media.
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