海水
纳米片
催化作用
析氧
多硫化物
电解
制氢
化学工程
吸附
无机化学
电解水
双功能
材料科学
解吸
氢
硫化物
化学
过电位
硫化氢
分解水
无定形固体
硫黄
电化学
双功能催化剂
氢燃料
纳米颗粒
光催化分解水
作者
Hui Feng,Yang Nie,Haijun Wang,Lixin Cao,Yubin Hu,Bohua Dong
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2025-11-25
卷期号:19 (3): 94908276-94908276
标识
DOI:10.26599/nr.2025.94908276
摘要
Direct seawater electrolysis offers a promising approach for large-scale hydrogen production, but it is challenged by harmful chlorine chemistry and high energy costs. Sulfur oxidation reaction (SOR) as an alternative to the slow oxygen evolution reaction (OER) is a low-energy-consuming seawater hydrogen production technology that can simultaneously degrade industrial sulfur-containing wastewater. However, the limited availability of efficient and stable catalysts has hindered its development. In this work, a chlorine-free seawater splitting coupled with a crystalline/amorphous strategy to promote electrocatalytic SOR for energy-efficient hydrogen production is reported. We propose a bifunctional amorphous FeNi2P nanosheet embedded with crystalline nanoparticles (c/a-FeNi2P) electrocatalyst, which exhibits excellent SOR and hydrogen evolution reaction (HER) performance. In situ Raman spectroscopy and density functional theory calculations reveal that the unique crystalline/amorphous strategy optimizes the adsorption of sulfide and polysulfide ions and the efficient desorption of S8, thereby enhancing catalytic activity and stability. c/a-FeNi2P enables efficient SOR-assisted seawater electrolysis. In the SOR-HER system, c/a-FeNi2P demonstrates an ultralow voltage of 0.548 V at 100 mA cm-2 and stable operation for 200 h at 170 mA cm-2, showcasing remarkable durability. This hybrid seawater electrolyzer provides a promising method for hydrogen production from seawater electrolysis, demonstrating great potential for energy conservation and environmental remediation.
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