Carbon-encapsulated heazlewoodite nanoparticles as highly efficient and durable electrocatalysts for oxygen evolution reactions

被引:0
作者
Mohammad Al-Mamun
Huajie Yin
Porun Liu
Xintai Su
Haimin Zhang
Huagui Yang
Dan Wang
Zhiyong Tang
Yun Wang
Huijun Zhao
机构
[1] Griffith University,Centre for Clean Environment and Energy
[2] Gold Coast Campus,Ministry Key Laboratory of Oil and Gas Fine Chemicals, College of Chemistry and Chemical Engineering
[3] Xinjiang University,Centre for Environmental and Energy Nanomaterials, Institute of Solid State Physics
[4] Chinese Academy of Sciences,undefined
来源
Nano Research | 2017年 / 10卷
关键词
heazlewoodite; electrocatalyst; encapsulation; oxygen evolution reaction; pyrolysis; graphitic carbon;
D O I
暂无
中图分类号
学科分类号
摘要
The activity and durability of electrocatalysts are important factors in their practical applications, such as electrocatalytic oxygen evolution reactions (OERs) used in water splitting cells and metal–air batteries. In this study, a novel electrocatalyst, comprising few-layered graphitic carbon (~5 atomic layers) encapsulated heazlewoodite (Ni3S2@C) nanoparticles (NPs), was designed and synthesized using a one-step solid phase pyrolysis method. In the OER test, the Ni3S2@C catalyst exhibited an overpotential of 298 mV at a current density of 10 mA·cm–2, a Tafel slope of 51.3 mV·dec–1, and charge transfer resistance of 22.0 Ω, which were better than those of benchmark RuO2 and most nickel-sulfide-based catalysts previously reported. This improved performance was ascribed to the high electronic conductivity of the graphitic carbon encapsulating layers. Moreover, the encapsulation of graphitic carbon layers provided superb stability without noticeable oxidation or depletion of Ni3S2 NPs within the nanocomposite. Therefore, the strategy introduced in this work can benefit the development of highly stable metal sulfide electrocatalysts for energy conversion and storage applications, without sacrificing electrocatalytic activity.
引用
收藏
页码:3522 / 3533
页数:11
相关论文
共 373 条
[1]  
Luo J. S.(2014)Water photolysis at 12.3% efficiency via perovskite photovoltaics and earth-abundant catalysts Science 345 1593-1596
[2]  
Im J. H.(2012)Trends in activity for the water electrolyser reactions on 3 Nat. Mater. 11 550-557
[3]  
Mayer M. T.(2016) M(Ni, Co, Fe, Mn) hydr(oxy)oxide catalysts Nat. Energy 1 16074-761
[4]  
Schreier M.(2010)Batteries: Charging ahead rationally ChemCatChem 2 724-426
[5]  
Nazeeruddin M. K.(1986)The mechanism of water oxidation: From electrolysis via homogeneous to biological catalysis Mater. Chem. Phys. 14 397-39
[6]  
Park N. G.(2015)Electrocatalytic properties of transition metal oxides for oxygen evolution reaction Nano Res. 8 23-3822
[7]  
Tilley S. D.(2015)A mini review of NiFe-based materials as highly active oxygen evolution reaction electrocatalysts Nano Res. 8 3815-1164
[8]  
Fan H. J.(2016)Facile synthesis of Fe/Ni bimetallic oxide solidsolution nanoparticles with superior electrocatalytic activity for oxygen evolution reaction Chem. Mater. 28 1155-4721
[9]  
Grätzel M.(2016)Vapor-phase atomic layer deposition of nickel sulfide and its application for efficient oxygen-evolution electrocatalysis Adv. Funct. Mater. 26 4712-1326
[10]  
Subbaraman R.(2016)Fe Energy Environ. Sci. 9 1320-7981