Coupling Co-Ni phosphides for energy-saving alkaline seawater splitting

被引:0
|
作者
Weijia Liu
Wenxian Liu
Tong Hou
Junyang Ding
Zhigui Wang
Ruilian Yin
Xingyuan San
Ligang Feng
Jun Luo
Xijun Liu
机构
[1] Guangxi University,State Key Laboratory of Featured Metal Materials and Life
[2] Zhejiang University of Technology,cycle Safety for Composite Structures, Guangxi Key Laboratory of Processing for Non
[3] Hebei University,ferrous Metals and Featured Materials, MOE Key Laboratory of New Processing Technology for Nonferrous Metals and Materials, School of Resources, Environment and Materials
[4] Yangzhou University,College of Materials Science and Engineering
[5] University of Electronic Science and Technology of China,Hebei Key Laboratory of Optic
来源
Nano Research | 2024年 / 17卷
关键词
seawater splitting; heterostructure; electrocatalysis; hydrazine oxidation reaction; hydrogen evolution reaction;
D O I
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中图分类号
学科分类号
摘要
The coupling of energy-saving small molecule conversion reactions and hydrogen evolution reaction (HER) in seawater electrolytes can reduce the energy consumption of seawater electrolysis and mitigate chlorine corrosion issues. However, the fabrication of efficient multifunctional catalysts for this promising technology is of great challenge. Herein, a heterostructured catalyst comprising CoP and Ni2P on nickel foam (CoP/Ni2P@NF) is reported for hydrazine oxidation (HzOR)-assisted alkaline seawater splitting. The coupling of CoP and Ni2P optimizes the electronic structure of the active sites and endows excellent electrocatalytic performance for HzOR and HER. Impressively, the two-electrode HzOR-assisted alkaline seawater splitting (OHzS) cell based on the CoP/Ni2P@NF required only 0.108 V to deliver 100 mA·cm−2, much lower than 1.695 V for alkaline seawater electrolysis cells. Moreover, the OHzS cell exhibits satisfactory stability over 48 h at a high current density of 500 mA·cm−2. Furthermore, the CoP/Ni2P@NF heterostructured catalyst also efficiently catalyzed glucose oxidation, methanol oxidation, and urea oxidation in alkaline seawater electrolytes. This work paves a path for high-performance heterostructured catalyst preparation for energy-saving seawater electrolysis for H2 production.
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页码:4797 / 4806
页数:9
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