双功能
催化作用
纳米结构
材料科学
纳米材料
电解
化学工程
纳米技术
电解水
金属
无机化学
化学
冶金
电极
电解质
物理化学
有机化学
工程类
作者
Yu Gao,Xin Sun,Gaber A. M. Mersal,A. Alhadhrami,Mohamed M. Ibrahim,Yulong Hou,Wenhui Liu,Denise Bildan,Hassan Algadi,Xiaoteng Liu
标识
DOI:10.1007/s42114-024-01176-y
摘要
Abstract The design of novel composite nanomaterial structures is important for the construction of advanced electrocatalysts. Nevertheless, obtaining novel electrocatalysts with excellent catalytic activity and stability is still challenging. Herein, new catalysts with a unique nanostructure of W-Ni 2 P@NiFe LDH/NF composed of W-doped Ni 2 P ultrafine nanosheets were successfully grown in situ using NiFe LDH nanostructures as the backbone support. The newly produced catalysts showed distinctive three-dimensional spherical nanostructure, beneficial to enhancing electron transport, providing abundant active sites, and promoting gas release. To increase the catalytic effectiveness, a synergy interaction was produced among W-Ni 2 P with NiFe LDH to yield significantly improved stability and reactivity electrocatalysts. Compared to NiFe LDH/NF and W-Ni 2 P/NF, the as-obtained spherically-structured W-Ni 2 P@NiFe LDH/NF catalysts demonstrated high catalytic efficiencies toward OER (222 mV @ 40 mA⋅cm −2 ), HER (195 mV @ 10 mA⋅cm −2 ), and total electrolysis (1.7 V @ 10 mA⋅cm −2 ). Besides, the catalytic activities of W-Ni 2 P@NiFe LDH/NF electrocatalysts compared well to most published non-precious metal catalysts and even valuable precious metal catalysts. In sum, the proposed approach to construct inexpensive, high-activity, and stable bifunctional electrocatalysts looks promising for advanced future hydrogen energy conversion applications.
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