Ji Seong Min, Kumar Anuj
Department of Nano Convergence Engineering, Jeonbuk National University, Jeonju 561-756, Korea.
School of Chemical Engineering, Yeungnam University, 280 Daehak-ro, Gyeongsan 38541, Korea.
Polymers (Basel). 2022 Jan 1;14(1):169. doi: 10.3390/polym14010169.
Sustainable biomass has attracted a great attention in developing green renewable energy storage devices (e.g., supercapacitors) with low-cost, flexible and lightweight characteristics. Therefore, cellulose has been considered as a suitable candidate to meet the requirements of sustainable energy storage devices due to their most abundant nature, renewability, hydrophilicity, and biodegradability. Particularly, cellulose-derived nanostructures (CNS) are more promising due to their low-density, high surface area, high aspect ratio, and excellent mechanical properties. Recently, various research activities based on CNS and/or various conductive materials have been performed for supercapacitors. In addition, CNS-derived carbon nanofibers prepared by carbonization have also drawn considerable scientific interest because of their high conductivity and rational electrochemical properties. Therefore, CNS or carbonized-CNS based functional materials provide ample opportunities in structure and design engineering approaches for sustainable energy storage devices. In this review, we first provide the introduction and then discuss the fundamentals and technologies of supercapacitors and utilized materials (including cellulose). Next, the efficacy of CNS or carbonized-CNS based materials is discussed. Further, various types of CNS are described and compared. Then, the efficacy of these CNS or carbonized-CNS based materials in developing sustainable energy storage devices is highlighted. Finally, the conclusion and future perspectives are briefly conferred.
可持续生物质在开发具有低成本、柔性和轻质特性的绿色可再生储能装置(如超级电容器)方面引起了极大关注。因此,纤维素由于其极为丰富的天然特性、可再生性、亲水性和生物降解性,被认为是满足可持续储能装置要求的合适候选材料。特别是,纤维素衍生的纳米结构(CNS)因其低密度、高表面积、高纵横比和优异的机械性能而更具前景。最近,基于CNS和/或各种导电材料的各种研究活动已针对超级电容器展开。此外,通过碳化制备的CNS衍生碳纳米纤维因其高导电性和合理的电化学性能也引起了相当大的科学兴趣。因此,基于CNS或碳化CNS的功能材料在可持续储能装置的结构和设计工程方法方面提供了充足的机会。在本综述中,我们首先进行介绍,然后讨论超级电容器和所使用材料(包括纤维素)的基本原理和技术。接下来,讨论基于CNS或碳化CNS的材料的功效。此外,描述并比较了各种类型的CNS。然后,强调这些基于CNS或碳化CNS的材料在开发可持续储能装置中的功效。最后,简要阐述结论和未来展望。