飞秒激光结构废纸作为超级电容器中可生物降解的柔性集流材料。

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-10-07 DOI:10.1039/D5RA06223C
Muhammad Qasim, Abdul Kareem, Oussama M. El-Kadri and Ali S. Alnaser
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引用次数: 0

摘要

近年来,由于柔性电子产品在显示屏、可穿戴传感器和植入式医疗设备中的多用途和引人注目的应用,它们已成为一种变革性的技术趋势。为了给这些设备供电,由于其作为可靠和高效的能量存储解决方案的潜力,大量的研究工作已经指向开发先进的柔性超级电容器。超级电容器的性能高度依赖于其整体组件的设计,包括电流收集器,它通过将有源材料连接到外部端子来促进电荷转移。在此,我们报告了一种高性能,低成本,可生物降解的超级电容器柔性集流器,为储能应用提供了可持续的解决方案。通过化学交联将Fe3+离子掺入废纸纤维中,并在空气或稀FeCl3水溶液中进行飞秒激光结构,将废纸转化为集流器。在不同的处理方法中,空气结构的集流器表现出最高的性能。这是由于其优越的导电性、较低的电荷转移电阻和明显的超亲水性,超过了非结构化的对应物和在FeCl3溶液中结构化的样品。此外,飞秒激光诱导的表面结构通过增加电化学活性面积,显著改善了离子扩散和电荷存储能力。在空气中以5 mV s-1扫描速率制备的样品计算得到的面电容为43.6 mF cm-2。此外,该集流器具有较高的面比电容保留率,在5000次恒流充放电(GCD)循环后,其面积比电容保留率为初始电容的82%。这些结果明显优于非结构化论文,并突出了激光诱导表面形貌在最大化离子扩散和电荷存储方面的关键作用。我们的发现建立了一个简单而有力的策略,将废物转化为可持续能源存储应用的有价值的组成部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Femtosecond laser-structured wastepaper as a biodegradable flexible current collector for supercapacitor applications

Femtosecond laser-structured wastepaper as a biodegradable flexible current collector for supercapacitor applications

Flexible electronics have emerged as a transformative technological trend in recent years, driven by their versatile and compelling applications in display screens, wearable sensors, and implantable medical devices. To power up these devices, considerable research efforts have been directed towards developing advanced flexible supercapacitors, owing to their potential as a reliable and efficient energy storage solution. The performance of supercapacitors is highly dependent on the design of their integral components, including the current collector, which facilitates charge transfer by connecting the active material to the external terminals. Herein, we report a high-performance, low-cost, and biodegradable flexible current collector for supercapacitors, offering a sustainable solution for energy storage applications. Wastepaper was transformed into a current collector through the incorporation of Fe3+ ions into the wastepaper fibers via chemical crosslinking and performing femtosecond laser structuring in air or inside a dilute aqueous solution of FeCl3. Among the different treatments, the current collector structured in air demonstrated the highest performance. This was attributed to its superior electrical conductivity, lower charge transfer resistance, and distinct superhydrophilicity, surpassing both the unstructured counterpart and the sample structured in the FeCl3 solution. Furthermore, the femtosecond laser-induced surface structures significantly contributed to improved ion diffusion and charge storage capability by increasing the electrochemically active area. The calculated areal capacitance for a sample prepared in air at 5 mV s−1 scan rate was 43.6 mF cm−2. In addition, the current collector exhibited high areal-specific capacitance retention, which was 82% of its initial capacitance after 5000 galvanostatic charge–discharge (GCD) cycles. These results significantly outperform unstructured paper and highlight the pivotal role of laser-induced surface morphology in maximizing ion diffusion and charge storage. Our findings establish a simple yet powerful strategy for converting waste into a valuable component for sustainable energy storage applications.

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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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