采用3D-NiO花/NF电极,在水性超级电容器和镍锌电池中实现卓越性能

IF 5.5 3区 材料科学 Q1 ELECTROCHEMISTRY
S. Arun Kumar, I. Sarasamreen, A. Vinnarasi, A. Gowdhaman, C. Balaji, S. Prabhu, R. Ramesh, P.M. Anbarasan
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引用次数: 0

摘要

超级电容器和电池这两种极具能力和竞争力的能量存储技术,能够令人满意地满足工业规模电子设备的能量需求。在这种方法中,开发独特的、形态可靠的、具有良好容量性能的电极对储能技术具有重要意义。在本工作中,通过无粘结剂工艺将氧化镍(NiO)微花水热注入泡沫镍集流器中用于储能应用。在2 A g-1的电流密度下,NiO/NF阴极材料提供了令人满意的电容(容量)~ 1381.8 F -1 (~ 212.49 mA h g-1),在5000次循环中保持了84.59%的稳定性。通过与BiVO4/NF阳极耦合,组装的NiO||BiVO4超级电池器件的峰值能量和功率密度分别为~ 38 Wh kg-1和~ 9600 W kg-1。以NiO/NF为阴极,Zn板为阳极,在水电解质介质中对一种可研究的全电池镍锌电池进行了性能评价。结果表明,水相Ni-Zn电池的峰值能量和功率密度分别为~ 157.14 Wh kg-1和~ 13.4 k W kg-1,并在5000次循环后保持86%的循环保留率。该装置所产生的容量和优异的稳定性可以在Zn+离子插入/脱离过程中提供足够的NiO电活性位点。该电化学研究表明,NiO/NF微花阴极材料具有良好的氧化还原性能,是一种很有前景的电化学储能系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Achieving superior performance in aqueous supercapatteries and Ni-Zn batteries by employing 3D-NiO flowers/NF electrode

Achieving superior performance in aqueous supercapatteries and Ni-Zn batteries by employing 3D-NiO flowers/NF electrode
Supercapacitors and batteries, two extremely capable and competent energy storage technologies, were able to satisfactorily supply the energy requirement in industrial-scale electronic equipment. In this approach, developing unique and morphology-dependable electrodes with good capacity performance plays a moral role in energy storage technologies. In this present work, nickel oxide (NiO) microflowers were hydrothermally bestowed on the Ni-foam current collector via binder-free process in energy storage applications. The NiO/NF cathode material delivered an admirable capacitance (capacity) of ∼ 1381.8 F g-1 (∼ 212.49 mA h g-1) under the current density of 2 A g-1 with better stability retention of 84.59 % over 5000 cycles. By coupling with a BiVO4/NF anode, the assembled NiO||BiVO4 supercapattery device achieved peak energy and power densities of ∼ 38 Wh kg-1 and ∼ 9600 W kg-1, respectively. A researchable full-cell Ni-Zn battery was employed with NiO/NF as a cathode and a Zn plate as anode, which were assessed in an aqueous electrolyte medium. As a result, the aqueous Ni-Zn cell reached peak energy and power densities of ∼ 157.14 Wh kg-1 and ∼ 13.4 k W kg-1 along with 86 % of cycling retention after 5000 cycles. The arisen capacity and exceptional stability performance of the device may provide sufficient NiO electroactive sites during the Zn+ ions insertion/desertion process. This electrochemical investigation provides good redox performance, further, we conclude that NiO/NF microflower cathode material is as promised as an electrochemical energy storage system.
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来源期刊
Electrochimica Acta
Electrochimica Acta 工程技术-电化学
CiteScore
11.30
自引率
6.10%
发文量
1634
审稿时长
41 days
期刊介绍: Electrochimica Acta is an international journal. It is intended for the publication of both original work and reviews in the field of electrochemistry. Electrochemistry should be interpreted to mean any of the research fields covered by the Divisions of the International Society of Electrochemistry listed below, as well as emerging scientific domains covered by ISE New Topics Committee.
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