Li Mai, Zhu Kailan, Zhao Hanxue, Meng Zheyi
College of Science, Donghua University, Shanghai 201620, China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science, Donghua University, Shanghai 201620, China.
Nanomaterials (Basel). 2022 Aug 18;12(16):2837. doi: 10.3390/nano12162837.
In advancing battery technologies, primary attention is paid to developing and optimizing low-cost electrode materials capable of fast reversible ion insertion and extraction with good cycling ability. Sodium-ion batteries stand out due to their inexpensive price and comparable operating principle to lithium-ion batteries. To achieve this target, various graphene-based nanocomposites fabricate strategies have been proposed to help realize the nanostructured electrode for high electrochemical performance sodium-ion batteries. In this review, the graphene-based nanocomposites were introduced according to the following main categories: graphene surface modification and doping, three-dimensional structured graphene, graphene coated on the surface of active materials, and the intercalation layer stacked graphene. Through one or more of the above strategies, graphene is compounded with active substances to prepare the nanocomposite electrode, which is applied as the anode or cathode to sodium-ion batteries. The recent research progress of graphene-based nanocomposites for SIBs is also summarized in this study based on the above categories, especially for nanocomposite fabricate methods, the structural characteristics of electrodes as well as the influence of graphene on the performance of the SIBs. In addition, the relevant mechanism is also within the scope of this discussion, such as synergistic effect of graphene with active substances, the insertion/deintercalation process of sodium ions in different kinds of nanocomposites, and electrochemical reaction mechanism in the energy storage. At the end of this study, a series of strategies are summarized to address the challenges of graphene-based nanocomposites and several critical research prospects of SIBs that provide insights for future investigations.
在推进电池技术发展的过程中,首要关注的是开发和优化低成本电极材料,这些材料应具备快速可逆的离子插入和提取能力以及良好的循环性能。钠离子电池因其价格低廉且工作原理与锂离子电池相似而脱颖而出。为实现这一目标,人们提出了各种基于石墨烯的纳米复合材料制备策略,以帮助实现用于高性能钠离子电池的纳米结构电极。在本综述中,基于石墨烯的纳米复合材料按照以下主要类别进行介绍:石墨烯表面改性与掺杂、三维结构化石墨烯、活性材料表面包覆石墨烯以及插层堆叠石墨烯。通过上述一种或多种策略,将石墨烯与活性物质复合制备纳米复合电极,并将其用作钠离子电池的阳极或阴极。本研究还基于上述类别总结了用于钠离子电池的基于石墨烯的纳米复合材料的最新研究进展,特别是纳米复合材料的制备方法、电极的结构特征以及石墨烯对钠离子电池性能的影响。此外,相关机理也在本讨论范围内,例如石墨烯与活性物质的协同效应、钠离子在不同类型纳米复合材料中的嵌入/脱嵌过程以及储能中的电化学反应机理。在本研究结尾总结了一系列应对基于石墨烯的纳米复合材料挑战的策略以及钠离子电池的几个关键研究前景,为未来的研究提供了思路。