电化学储能用还原氧化石墨烯功能化ZnO/ZnCo2O4纳米复合材料的制备

Subrata Maity , Arpita Dutta , Kartik Tantubay , Bapan Bairy , Sayani Saha , Sourav Bhowmick , Supriya Mondal , Abu Jahid Akhtar , Moni Baskey (Sen)
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摘要

最近的进展已将超级电容器定位为现代创新中最有前途的储能技术之一。提高其性能的主要研究重点是开发和表征具有高导电性和能量密度的先进电极材料。在本研究中,通过简单的回流法合成了还原氧化石墨烯基杂化ZnO/ZnCo2O4纳米复合材料。通过各种表征技术,包括x射线衍射(XRD)、傅里叶变换红外(FTIR)、紫外可见(UV-Vis)、扫描电子能谱(SEM)和透射电子能谱(TEM)研究,证实了纳米复合材料的成功形成。采用BET (brunauer - emmet - teller)法分析了纳米复合材料的表面积。采用循环伏安法(CV)和恒流充放电(GCD)测试,在1 M KOH作为电解液的双电极配置下,评价了合成的纳米复合材料的电化学性能。结果表明,该材料在1 a /g时具有646 F/g的高比电容,并且具有良好的循环稳定性,即使在4000次循环后仍保持84.8%的初始电容。该装置还展示了令人印象深刻的比能量和功率,分别达到50.28 Wh/kg和2999 W/kg。此外,利用Trasatti图研究了电荷存储机制,表明双层电容量(EDLC, 51.45%)和伪电容(CPC, 48.55%)对电荷存储的贡献是平衡的。这些结果突出了ZnO/ZnCo2O4-rGO纳米复合材料作为一种非常有前途的储能材料,通过EDLC和伪电容的共同贡献提供了优化的总电容。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fabrication of a hybrid reduced graphene oxide functionalized ZnO/ZnCo2O4 nanocomposite for electrochemical energy storage
Recent advancements have positioned supercapacitors as one of the most promising energy storage technologies in modern innovation. A primary focus of research to enhance their performance lies in developing and characterizing advanced electrode materials with high conductivity and energy density. In this study, reduced graphene oxide based hybrid ZnO/ZnCo2O4 nanocomposite was synthesized via a simple reflux method. The successful formation of the nanocomposite was confirmed through various characterization techniques, including X-ray diffraction (XRD), Fourier Transform Infrared (FTIR), Ultraviolet–visible (UV–Vis), Scanning Electron Spectroscopy (SEM) and Transmission Electron Spectroscopy (TEM) studies. The surface area of the nanocomposite was analyzed by Brunauer–Emmett–Teller (BET) study. The electrochemical properties of the synthesized nanocomposite were assessed using cyclic voltammetry (CV) and galvanostatic charge-discharge (GCD) tests in a two-electrode configuration with 1 M KOH as the electrolyte. The results revealed a high specific capacitance of 646 F/g at 1 A/g and excellent cyclic stability, retaining 84.8 % of its initial capacitance even after 4000 cycles. The device also demonstrated impressive specific energy and power, achieving 50.28 Wh/kg and 2999 W/kg respectively. Additionally, charge storage mechanisms were investigated using the Trasatti plot, which indicated a balanced contribution from electric double-layer capacitance (EDLC, 51.45 %) and pseudo capacitance (CPC, 48.55 %). These results highlight the ZnO/ZnCo2O4-rGO nanocomposite as a highly promising material for energy storage applications, offering optimized total capacitance through the combined contributions of EDLC and pseudo capacitance.
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