多形态双金属氧化物钴酸镍电极材料的超级电容储能性能研究进展

韩媛1,2, 路露1,2*, 周小红1,2, 张鑫3

化工新型材料 ›› 2025, Vol. 53 ›› Issue (10) : 54 -59.

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化工新型材料 ›› 2025, Vol. 53 ›› Issue (10) : 54-59. DOI: 10.19817/j.cnki.issn1006-3536.2025.10.045
综述与专论

多形态双金属氧化物钴酸镍电极材料的超级电容储能性能研究进展

    韩媛1,2, 路露1,2*, 周小红1,2, 张鑫3
作者信息 +

Research progress on supercapacitors energy storage performance of multi-morphology bimetallic oxide nickel cobaltate electrode materials

  • Han Yuan1,2, Lu Lu1,2, Zhou Xiaohong1,2, Zhang Xin3
Author information +
文章历史 +
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摘要

电极材料是影响超级电容器、电池等储能元件性能的核心要素。双金属氧化物电极材料具有比单一金属氧化物高几个数量级的电导率因而可以实现更高的输出功率密度。其中,双金属氧化物钴酸镍(NiCo2O4)由于具有良好的高电导率、超高的理论比容量、耐腐蚀性和低毒性等优点备受关注。通过对NiCo2O4形貌的调控可以获得高性能电极材料。主要针对纳米线、纳米片、纳米管、纳米球、纳米花等多形态双金属氧化物NiCo2O4电极材料,探索了各种制备方法的基本原理、特点以及对纳米NiCo2O4形貌的调控规律;简要说明了材料形貌与尺寸对其性能影响的机理及规律。

Abstract

Electrode materials are an important factor affecting the performance of energy storage components such as supercapacitors and batteries.Bimetallic oxide electrode materials have conductivity several orders of magnitude higher than single metal oxides,enabling higher output power density.Among them,bimetallic oxide NiCo2O4 electrode material has attracted much attention due to its excellent high conductivity,ultra-high theoretical specific capacity,corrosion resistance,and low toxicity.High performance electrode materials can be obtained by regulating the morphology of NiCo2O4 electrode material.This article mainly focused on multi-morphology bimetallic oxide NiCo2O4 electrode materials such as nanowires,nanosheets,nanotubes,nanospheres,and nanoflowers.The basic principles and characteristics of various preparation methods,as well as regulation rules for nano NiCo2O4 morphology were studied.The influence of the morphology and size of the materials on the their performance was breifly discussed.

关键词

钴酸镍 / 双金属氧化物 / 电极材料 / 多形态 / 储能研究

Key words

NiCo2O4 / bimetallic oxide / electrode materials / multi-morphology / energy storage research

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多形态双金属氧化物钴酸镍电极材料的超级电容储能性能研究进展[J]. 化工新型材料, 2025, 53(10): 54-59 DOI:10.19817/j.cnki.issn1006-3536.2025.10.045

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基金资助

江苏省自然科学基金项目(BK20191041);江苏省高校自然科学基金面上项目(22KJD480002);新能源汽车材料与结构设计协同创新中心项目(KYPT23307)

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