以NiO-NiFe2O4/MWCNTs纳米复合材料为电催化剂的电化学水分解

Rida Noor, M. Shahid, F. Khan, M. Umer
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引用次数: 0

摘要

不断上升的能源需求、传统能源的稀缺和环境问题是通过水分解生产燃料的关键。考虑到成本效益、稳定性和OER(析氧反应)活性,已经报道了各种各样的电催化剂。在同样的背景下,基于NiO-NiFe2O4/MWCNTs的多孔杂化纳米复合材料作为OER电催化剂也被研究。以吐温为表面活性剂,通过共沉淀法合成。利用相关工具对合成电催化剂沉积玻碳(GC)电极作为阳极的电解水进行了表征和电化学研究。合成了铁掺杂的氧化镍纳米颗粒,发现NiO具有优异的析氧活性,并且由于其较高的电正性,铁掺杂使其电导率提高。纳米复合材料是通过掺入重量高达20%的MWCNT(多壁碳纳米管)合成的。MWCNTs具有高的表面体积比、稳定性和优异的导电性,并且由于它们的掺入而减小了晶体尺寸,从而显著提高了电催化剂的性能。在一定的煅烧温度下,NiO和NiFe2O4的杂化形成也是OER活性增强的原因,因为晶界增加。多孔NiO-NiFe2O4/MWCNTs浓度为10%时,在碱性介质中1.8V电流密度为35mA/cm2时表现更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrochemical Water Splitting Using NiO-NiFe2O4/MWCNTs Nanocomposite as Electrocatalyst
Escalating energy demands, scarcity of conventional energy resources and environmental concerns are the key to fuel production through water splitting. Various electrocatalysts have been reported, considering the cost effectiveness, stability and OER (oxygen evolution reaction) activity. In the same context, porous hybrid NiO-NiFe2O4/MWCNTs based nanocomposite as an OER electrocatalyst, has been investigated in the current study. The synthesis has been accomplished via co-precipitation using Tween as a surfactant. Characterization and electrochemical study for water electrolysis using synthesized electrocatalyst deposited glassy Carbon (GC) electrode as anode was carried out using relevant tools. Iron-doped Nickel oxide nanoparticles were synthesized recognizing excellent oxygen evolution activity of NiO and its increase in conductivity with Fe incorporation due to its higher electropositivity. Nanocomposites were synthesized by incorporating upto 20% weight percent MWCNT (Multiwall carbon nanotubes). High surface to volume ratios, stability and excellent conductivity of MWCNTs furthermore, reduction of crystallite sized due to their incorporation enhanced the performance of the electrocatalyst significantly. Hybrid formation of NiO and NiFe2O4 at a certain calcination temperature was also found to be the reason for enhanced OER activity due to the increased grain boundaries. Porous NiO-NiFe2O4/MWCNTs with 10% MWCNTs concentration outperformed with 35mA/cm2 of current density at 1.8V in alkaline media.
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