在环境条件下绿色制造可堆叠激光诱导石墨烯微型超级电容器:设计真正可持续的技术平台

IF 6.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Sara L. Silvestre, Maria Morais, Raquel R. A. Soares, Zachary T. Johnson, Eric Benson, Elisabeth Ainsley, Veronica Pham, Jonathan C. Claussen, Carmen L. Gomes, Rodrigo Martins, Elvira Fortunato, Luis Pereira, João Coelho
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引用次数: 0

摘要

全世界都在推动环保材料和能源解决方案,这推动了对绿色技术的广泛研究。重点是优先考虑可持续发展和环境效益的协同作用。本研究探讨了纸张、富含木质素的纸张和软木塞等丰富、无毒和可持续资源在生产具有更高电容的激光诱导石墨烯(LIG)超级电容器电极方面的潜力。利用二氧化碳激光系统开发了一种在环境条件下制造这些电极的单步方法,为传统碳源提供了一种环境友好型替代品。由此产生的绿色微型超级电容器(MSCs)实现了惊人的面积电容(≈7-10 mF cm-2)以及功率和能量密度(≈4 μW cm-2,0.01 mA cm-2时≈0.77 µWh cm-2)。经过 5000 个充放电周期的稳定性测试表明,电容保持率≈80-85%,突出表明了器件的耐用性。这些基于 LIG 的器件具有多功能性,可通过堆叠和夹层 MSC 配置(并联或串联)调整电压输出,适合各种大规模应用。这项研究表明,利用可生物降解材料制造高质量的储能装置是可能的。这一发展可推动可再生能源和离网技术的进步,并减少电子垃圾。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Green Fabrication of Stackable Laser-Induced Graphene Micro-Supercapacitors under Ambient Conditions: Toward the Design of Truly Sustainable Technological Platforms

Green Fabrication of Stackable Laser-Induced Graphene Micro-Supercapacitors under Ambient Conditions: Toward the Design of Truly Sustainable Technological Platforms

Green Fabrication of Stackable Laser-Induced Graphene Micro-Supercapacitors under Ambient Conditions: Toward the Design of Truly Sustainable Technological Platforms

Extensive research into green technologies is driven by the worldwide push for eco-friendly materials and energy solutions. The focus is on synergies that prioritize sustainability and environmental benefits. This study explores the potential of abundant, non-toxic, and sustainable resources such as paper, lignin-enriched paper, and cork for producing laser-induced graphene (LIG) supercapacitor electrodes with improved capacitance. A single-step methodology using a CO2 laser system is developed for fabricating these electrodes under ambient conditions, providing an environmentally friendly alternative to conventional carbon sources. The resulting green micro-supercapacitors (MSCs) achieve impressive areal capacitance (≈7–10 mF cm−2) and power and energy densities (≈4 μW cm-2 and ≈0.77 µWh cm−2 at 0.01 mA cm−2). Stability tests conducted over 5000 charge–discharge cycles demonstrate a capacitance retention of ≈80–85%, highlighting the device durability. These LIG-based devices offer versatility, allowing voltage output adjustment through stacked and sandwich MSCs configurations (parallel or series), suitable for various large-scale applications. This study demonstrates that it is possible to create high-quality energy storage devices based on biodegradable materials. This development can lead to progress in renewable energy and off-grid technology, as well as a reduction in electronic waste.

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来源期刊
Advanced Materials Technologies
Advanced Materials Technologies Materials Science-General Materials Science
CiteScore
10.20
自引率
4.40%
发文量
566
期刊介绍: Advanced Materials Technologies Advanced Materials Technologies is the new home for all technology-related materials applications research, with particular focus on advanced device design, fabrication and integration, as well as new technologies based on novel materials. It bridges the gap between fundamental laboratory research and industry.
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