Influence of graphene nanoplatelet on carboxymethyl cellulose for enhanced electrochemical performance

M. R. Islam, Izuan Nasib, Syed Nafiz, Mohammad Dalour Beg, Kim Pickering, Mohd Al-Fatihhi, Ahmad Naim Ahmad Yahaya, Sairul Izwan Bin Safie, Md. Gulam Smdani
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Abstract

Renewable and bio-based polymers are favored over conventional synthetic polymers because of their low-cost, abundance and sustainability, but due to their average electrochemical performance, sometimes their application is limited as battery material. This study investigates the electrochemical properties of nanocomposites composed of carboxymethyl cellulose (CMC) and graphene nanoplatelets (GNP) at varying GNP ratios. Four samples with GNP weight ratios ranging from 0 to 0.33 wt.% were subjected to analysis using electrochemical impedance spectroscopy (EIS), scanning electron microscopy (SEM), and Fourier transform infrared (FTIR) spectroscopy. The sample containing 0.33% GNP exhibited the most favorable electrochemical behavior, demonstrating an ionic conductivity of approximately 2.54 × 10−5 S/cm at 25 °C. Cyclic Voltammogram and Nyquist plots indicated an electrochemical process governed by diffusion processes, particularly evident with 0.33% GNP. This sample displayed the highest specific capacitance at 4.290 F/g, representing an 83.07% improvement over the Pure CMC sample, along with a favorable electrochemical window at 375 mV. Bode plot analysis underscored the influence of diffusion and charge transfer on resistance and conductivity, highlighting enhanced ion mobility in this sample. SEM micrographs revealed improved GNP dispersion in the CMC matrix at higher GNP concentrations, enhancing contact. FTIR analysis confirmed effective CMC–GNP interaction, characterized by a specific peak at 1589 cm−1. These findings provide valuable insights into the electrochemical potential of CMC–GNP composites, offering prospects for their application in diverse electrochemical devices.
石墨烯纳米微粒对羧甲基纤维素的影响:增强电化学性能
与传统合成聚合物相比,可再生和生物基聚合物因其低成本、丰富性和可持续性而备受青睐,但由于其电化学性能一般,有时其作为电池材料的应用受到限制。本研究探讨了由羧甲基纤维素(CMC)和石墨烯纳米颗粒(GNP)组成的纳米复合材料在不同 GNP 比值下的电化学性能。使用电化学阻抗光谱(EIS)、扫描电子显微镜(SEM)和傅立叶变换红外光谱(FTIR)对 GNP 重量比为 0 至 0.33 wt.% 的四种样品进行了分析。含 0.33% GNP 的样品表现出最良好的电化学行为,在 25 °C 时离子电导率约为 2.54 × 10-5 S/cm。循环伏安图和奈奎斯特图显示,电化学过程受扩散过程的控制,0.33% GNP 尤为明显。该样品显示出最高的比电容(4.290 F/g),比纯 CMC 样品提高了 83.07%,并在 375 mV 处显示出良好的电化学窗口。博德图分析强调了扩散和电荷转移对电阻和电导率的影响,突出显示了该样品离子迁移率的提高。扫描电镜显微照片显示,在 GNP 浓度较高时,GNP 在 CMC 基质中的分散性有所改善,从而增强了接触性。傅立叶变换红外光谱分析证实了 CMC 与 GNP 的有效相互作用,其特征是在 1589 cm-1 处出现了一个特定的峰值。这些发现为 CMC-GNP 复合材料的电化学潜力提供了宝贵的见解,为其在各种电化学装置中的应用提供了前景。
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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