挖掘介孔 NiMoO4/TiS2 复合材料的潜力,提高电化学超级电容器的性能

IF 3 4区 材料科学 Q3 CHEMISTRY, PHYSICAL
Ghulam Nabi , Abid Hussain , Wajid Ali , Manawwer Alam , Muhammad Tanveer , Faiza Naseem , Ali Haider Bhalli , Hammad Ahmed , Naeem Shahzad Arshad , Soha Muzaffar
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引用次数: 0

摘要

介孔电极材料具有高比表面积、优异的多孔质地和最佳的孔径分布,有利于增加离子吸附的活性位点和提高离子扩散速率。通过水热法制备了 NiMoO4、TiS2 及其复合材料,如 NT-1、NT-2、NT-3 和 NT-4 复合材料,以提高超级电容器电极的电容。我们采用了不同的方法来分析合成材料的光学、形态和结构特征。利用 X 射线衍射评估了原始材料和复合材料的结晶性质。扫描电子显微镜检查证实了介孔和不规则纳米粒子的形成,其大小在 50 至 100 纳米之间。傅立叶变换红外光谱法用于研究制备样品的伸缩振动。通过光致发光(PL)分析,NT-1 复合材料的能带隙确定为 2.78 eV。在 1 Ag-1 的条件下,NT-1 复合材料的比电容高达 1257.14 Fg-1,这归功于其巨大的比表面积、高效的电荷转移和协同效应。因此,NT-1 二元金属硫化物复合材料具有显著的比电容和循环稳定性,是一种高性能超级电容器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploiting the potential of mesoporous NiMoO4/TiS2 composite for enhanced electrochemical supercapacitor performance

The mesoporous electrode material offers a high surface area, excellent porous texture, and optimal pore-size distribution, facilitating increased active sites for ion accretion and enhanced ionic diffusion rates. NiMoO4, TiS2, and their composites such as NT-1, NT-2, NT-3, and NT-4 composites have been prepared by hydrothermal approach to enhance the capacitance of supercapacitor electrodes. Different methodologies have been employed to analyze the optical, morphological and structural characteristics of the synthesized materials. X-ray diffraction was utilized to assess the crystalline nature of both the pristine materials and composites. Scanning electron microscopy examination confirmed the formation of mesoporous and irregular nanoparticles with sizes ranging from 50 to 100 nm. Fourier-transform infrared spectroscopy was employed to examine the stretching vibrations of the prepared samples. Through photoluminescence (PL) analysis, the energy band gap of the NT-1 composite was decisive to be 2.78 eV. The NT-1 composite exhibits an impressive specific capacitance of 1257.14 Fg−1 at 1 Ag−1, attributed to its huge surface area, efficient charge transfer, and synergistic effect while demonstrating remarkable stability after 5000 cycles with 92% capacitance retention. Therefore, NT-1 binary metal sulfide composite unleashes high-performance supercapacitors with remarkable specific capacitance and cyclic stability.

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来源期刊
Solid State Ionics
Solid State Ionics 物理-物理:凝聚态物理
CiteScore
6.10
自引率
3.10%
发文量
152
审稿时长
58 days
期刊介绍: This interdisciplinary journal is devoted to the physics, chemistry and materials science of diffusion, mass transport, and reactivity of solids. The major part of each issue is devoted to articles on: (i) physics and chemistry of defects in solids; (ii) reactions in and on solids, e.g. intercalation, corrosion, oxidation, sintering; (iii) ion transport measurements, mechanisms and theory; (iv) solid state electrochemistry; (v) ionically-electronically mixed conducting solids. Related technological applications are also included, provided their characteristics are interpreted in terms of the basic solid state properties. Review papers and relevant symposium proceedings are welcome.
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