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Biomass-derived biochar materials as sustainable energy sources for electrochemical energy storage devices

机译:生物量衍生的生物炭材料作为电化学能量存储装置的可持续能源

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High power and energy density electrochemical energy storage devices are more important to reduce the dependency of fossil fuels and also required for the intermittent storage of renewable energy. Among various energy storage devices, carbon serves as a predominant choice of electrode material owing to abundance, electrical conductivity, and control over the intrinsic properties. In this context, biomass, an abundant, inexpensive, and renewable source to produce biochars has gained significant research attention not only to mitigate the environmental concern, but also to promote the development of sustainable energy storage applications. In this review, recent progresses towards the conversion and efficient utilization of biomass and its derived biochar as electrode materials for energy storage devices, including supercapacitors and batteries (Li-ion, Na-ion, Li-S, and Metal-air) is summarized and discussed. The various sources of biomass, processes to derive biochar from the biomass, and the effects of various parameters involved in the synthesis methods to tailor its morphology, surface area, pore structure, and composition of the biochars along with the structure-activity relationship and technology-to-market is elaborated, which will lead to remarkable exploration of biomass towards realizing sustainable energy storage devices.
机译:高功率和能量密度电化学能量存储装置更为重要,以减少化石燃料的依赖性,并且还需要间歇地存储可再生能量。在各种能量存储装置中,由于丰度,导电性和对本质性质的控制,碳用作电极材料的主要选择。在此背景下,生物质,丰富,廉价和可再生源产生生物炭已获得显著的研究不仅重视减轻对环境的关注,同时也促进了可持续能源存储应用的发展。在这篇综述中,最近向生物质的转化率和有效的利用和其衍生的生物炭作为电极材料用于能量存储设备,包括超级电容器和电池(锂离子,钠离子,锂S,和金属 - 空气)进展总结并讨论过。生物质的各种来源,过程以从生物质中派生生物炭,以及各种参数的影响参与合成方法皆以其形态,表面积,孔结构,和组合物中的生物炭的与结构 - 活性关系和技术沿着 - 阐述了市场,这将导致生物量朝向实现可持续储能设备的显着探索。

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