Ag NPs-modified NiCoMn Layered Double Hydroxides Electrodes for High-Performance Asymmetric Supercapacitors

IF 5.8 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Saad Ali, Mohsin Ali Marwat, Muhammad Fawad Khan, Ahtisham Anjum, Muhammad Humayun, Mohamed Bououdina, Muhammad Bilal Hanif
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Abstract

The development of supercapacitor technology has been hindered by limitations in achieving both high power density and long cycle stability. Layered double hydroxides (LDHs) have emerged as promising candidates to address these challenges. In this study, we synthesized three distinct electrodes: NiCoMn LDH (LDH), Ag-citrate nanoparticles (Ag NPs), and a composite of Ag-citrate/NiCoMn LDH (Ag NPs/LDH), to explore their electrochemical performance. The structural and morphological characteristics of the synthesized materials were confirmed using scanning electron microscopy (SEM), X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), and Raman spectroscopy. Among the materials, the Ag NPs/LDH composite exhibited superior electrochemical properties, with distinct anodic and cathodic peaks of higher current intensity and an expanded integrated area in the current-voltage curve. Additionally, impedance analysis revealed the lowest charge transfer resistance, indicating efficient charging and discharging processes. In addition, the Ag-NPs/NiCoMn composite exhibited a remarkable aerial-specific capacitance of 2764 mF.cm−2 at 5 mA cm-2 in a three-electrode configuration. Furthermore, in an Asymmetric supercapacitor (ASC) device configuration of AgNPs/LDH as a working electrode and Activated carbon as a working electrode (shorthand form AgNPs/LDH ||AC ASC), a specific capacitance of 1850 mF.cm-2 at 5 mA.cm-2 was achieved. Encouragingly, the AgNPs/LDH||AC ASC device exhibited an energy density of 0.593 mWhcm-2 at a power density of 10 mW.cm-2, maintaining a 0.175 mWhcm-2 at a high-power density of 90 mWcm-2, while retaining 102% of its capacitance after 4000 charging and discharging cycles. Overall, the AgNPs/LDH electrode material demonstrates significant potential for advancement in supercapacitor technology.
用于高性能不对称超级电容器的银氮氧化物修饰镍钴锰层状双氢氧化物电极
超级电容器技术的发展一直受到实现高功率密度和长周期稳定性的限制。层状双氢氧化物(LDHs)已成为应对这些挑战的有前途的候选材料。在这项研究中,我们合成了三种不同的电极:我们合成了三种不同的电极:镍钴锰层状双氢氧化物(LDH)、柠檬酸银纳米颗粒(Ag NPs)以及柠檬酸银/镍钴锰层状双氢氧化物的复合材料(Ag NPs/LDH),以探索它们的电化学性能。利用扫描电子显微镜(SEM)、X 射线衍射(XRD)、傅立叶变换红外光谱(FTIR)和拉曼光谱证实了合成材料的结构和形态特征。在这些材料中,Ag NPs/LDH 复合材料表现出优异的电化学性能,具有明显的阳极峰和阴极峰,电流强度更高,电流-电压曲线的积分面积更大。此外,阻抗分析显示电荷转移电阻最低,表明充电和放电过程高效。此外,在三电极配置中,Ag-NPs/NiCoMn 复合材料在 5 mA cm-2 电流条件下显示出 2764 mF.cm-2 的显著特异性架空电容。此外,在以 AgNPs/LDH 为工作电极和以活性炭为工作电极的不对称超级电容器(ASC)装置配置中(简称为 AgNPs/LDH ||AC ASC),在 5 mA.cm-2 的条件下实现了 1850 mF.cm-2 的比电容。令人鼓舞的是,AgNPs/LDH||AC ASC 器件在功率密度为 10 mW.cm-2 时的能量密度为 0.593 mWhcm-2,在高功率密度为 90 mWcm-2 时的能量密度保持在 0.175 mWhcm-2,同时在 4000 次充放电循环后保持了 102% 的电容。总之,AgNPs/LDH 电极材料展示了超级电容器技术的巨大发展潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Alloys and Compounds
Journal of Alloys and Compounds 工程技术-材料科学:综合
CiteScore
11.10
自引率
14.50%
发文量
5146
审稿时长
67 days
期刊介绍: The Journal of Alloys and Compounds is intended to serve as an international medium for the publication of work on solid materials comprising compounds as well as alloys. Its great strength lies in the diversity of discipline which it encompasses, drawing together results from materials science, solid-state chemistry and physics.
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