Nickel oxides/hydroxides-graphene as hybrid supercapattery nanocomposites for advanced charge storage materials – a review

IF 8.1 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
W. Basirun, Idris Mohamed Saeed, Mohammad Saidur Rahman, S. Mazari
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引用次数: 12

Abstract

Abstract This work presents a review of nanocomposites of nickel oxides (NiO, nickel cobaltite NiCo2O4), nickel hydroxides (Ni(OH)2), layered-double hydroxides of Ni (LDH-Ni) with graphene, functionalized-graphene (graphene oxide and reduced graphene oxide), doped-graphene (nitrogen doped and boron doped graphene) as hybrid supercapattery materials. The synergy between battery materials such as nanostructured nickel oxides, hydroxides, LDH-Ni with supercapacitors such as graphene/functionalized graphene/doped graphene, provides better energy storage performances than the pure materials. Although used battery cathodes, the nickel oxides/hydroxides were incorporated with graphene materials to enhance the charge density and the power density of the hydrid supercapattery nanocomposites. The higher power density and energy density of the hydrid supercapattery nanocomposites bridges the gap between batteries and supercapacitors. The reasons for the higher performance of the hybrid supecapattery electrodes compared to the pure nickel oxides/hydroxides are discussed. The review also presents the different types of synthetic process of the nanocomposites and future perspectives.
镍氧化物/氢氧化物-石墨烯混合超级电池纳米复合材料的研究进展
摘要本文综述了氧化镍(NiO,镍钴酸盐NiCo2O4)、氢氧镍(Ni(OH)2)、层状双氢氧镍(LDH-Ni)与石墨烯、功能化石墨烯(氧化石墨烯和还原氧化石墨烯)、掺杂石墨烯(氮掺杂和硼掺杂石墨烯)作为混合超级电池材料的纳米复合材料。纳米结构氧化镍、氢氧化物、LDH-Ni等电池材料与石墨烯/功能化石墨烯/掺杂石墨烯等超级电容器之间的协同作用,提供了比纯材料更好的储能性能。虽然使用了电池阴极,但将氧化镍/氢氧化物与石墨烯材料结合,以提高氢化超级电池纳米复合材料的电荷密度和功率密度。氢化超级电容器纳米复合材料具有更高的功率密度和能量密度,填补了电池和超级电容器之间的空白。讨论了混合超级电池电极比纯氧化镍/氢氧化物电极性能更高的原因。综述了不同类型的纳米复合材料的合成工艺,并对其发展前景进行了展望。
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来源期刊
CiteScore
22.10
自引率
2.80%
发文量
0
审稿时长
3 months
期刊介绍: Critical Reviews in Solid State and Materials Sciences covers a wide range of topics including solid state materials properties, processing, and applications. The journal provides insights into the latest developments and understandings in these areas, with an emphasis on new and emerging theoretical and experimental topics. It encompasses disciplines such as condensed matter physics, physical chemistry, materials science, and electrical, chemical, and mechanical engineering. Additionally, cross-disciplinary engineering and science specialties are included in the scope of the journal.
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