Recent advances in bio-based electrode materials in supercapacitor applications: Energy storage materials and technologies

Qamar Navid, Masoumeh Taali, Z. Shirmohammadi, M. Khosravy, M. Danish
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Abstract

The modern world's reliance on fossil fuels has led to many issues, including rising fuel prices, pollution, climate change, and geopolitical unrest. While massive effort is required to deal with climate change comprehensively. Developing alternative energy sources and storage technologies is an important priority that can only be gained over time by reducing these issues. Because of this, recent years have seen an increase in the use of high-power and high-energy density storage systems, increasing the use of renewable energy sources or improving transportation efficiency contribute to climate change mitigation. Renewable energy resource deployment is associated with storage systems for reliable and continuous energy supply. It is essential to keep developing more efficient storage units to advance environmentally friendly technologies. Despite extensive research and development efforts, an essential upsurge in energy storage capability is required to meet future demand. In the next generation of energy storage devices, supercapacitors (SCs) seem an excellent candidate for wearable and portable electronics compared to the flexible lithium-ion batteries-based technologies. Electrochemically excellent carbon materials are required to protect the environment and develop renewable energy sources, but they are scarce. Depending on the desired carbon morphology, there are many different types of biomasses and biowaste materials from which to choose carbon precursors. The preparatory work and characterization of newly found and evolved bio-based carbon sources are discussed and summarized in this study. Precursor and nanostructure types are listed in alphabetical order. New carbon precursors with excellent electrochemical performance in energy storage applications are also discussed. Ultimately, a conclusion and an outlook from the application perspective are drawn.
生物基电极材料在超级电容器中的应用进展:储能材料与技术
现代世界对化石燃料的依赖导致了许多问题,包括燃料价格上涨、污染、气候变化和地缘政治动荡。全面应对气候变化需要付出巨大努力。开发替代能源和储存技术是一个重要的优先事项,只有随着时间的推移减少这些问题才能获得。正因为如此,近年来人们越来越多地使用高功率和高能量密度的储能系统,增加可再生能源的使用或提高运输效率,有助于减缓气候变化。可再生能源的部署与存储系统相关联,以实现可靠和持续的能源供应。为了推进环境友好型技术,必须不断开发更高效的存储单元。尽管进行了大量的研究和开发工作,但为了满足未来的需求,储能能力需要大幅提升。在下一代能量存储设备中,与基于柔性锂离子电池的技术相比,超级电容器(SCs)似乎是可穿戴和便携式电子产品的绝佳候选者。电化学性能优良的碳材料是保护环境和开发可再生能源所必需的,但它们是稀缺的。根据所需的碳形态,有许多不同类型的生物质和生物废物材料,从中选择碳前体。本文对新发现和发展的生物基碳源的制备工作和特性进行了讨论和总结。前驱体和纳米结构类型按字母顺序列出。并讨论了具有优异电化学性能的新型碳前驱体在储能方面的应用。最后,从应用的角度对本文进行了总结和展望。
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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