纳米棒
电催化剂
热液循环
电化学
氢
化学工程
镍
催化作用
电流密度
材料科学
纳米技术
化学
电极
物理
物理化学
冶金
有机化学
工程类
量子力学
生物化学
作者
Quoc‐Nam Ha,Noto Susanto Gultom,Mikha Zefanya Silitonga,Tadele Negash Gemeda,Dong‐Hau Kuo
标识
DOI:10.1016/j.cej.2023.143253
摘要
A cost-effective, high-performance, and stable electrocatalyst at high current density is critical to an industrial hydrogen production system. Herein, the surface engineering was used to synthesize core–shell structured Ni3S2@LiMoNiOx(OH)y nanorod arrays on nickel foam by a single-step hydrothermal process. Systematic investigations confirm that the simultaneous incorporation of Li and Mo can change the morphology of pristine Ni3S2 from granules to nanorod, which facilitates electron and mass transport for electrochemical tests and provides more accessible active sites. Impressively, Ni3S2@LiMoNiOx(OH)y exhibits excellent catalytic activity for hydrogen evolution reaction (HER) with low overpotentials of −57 mV and −365 mV to achieve current densities of −10 mA/cm2 and −1000 mA/cm2, respectively. Additionally, the core–shell Ni3S2@LiMoNiOx(OH)y nanorods demonstrate a fast release of generated-H2 bubbles to favor for more than 100 h stability at a high current density of −1000 mA/cm2. The core–shell formation mechanism and the kinetic mechanism of excellent HER performance is elucidated.
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