使用石墨烯的高性能钠离子电池:最新发展和设计概述。

IF 7.5 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
ChemSusChem Pub Date : 2024-08-13 DOI:10.1002/cssc.202400958
Dr. Sachin Sharma Ashok Kumar, Dr. M. Nujud Badawi, J. Liew, Prof. Dr. Thibeorchews Prasankumar, Prof. Dr. K. Ramesh, Prof. Dr. S. Ramesh, Prof. Dr. S. Ramesh, Prof. Dr. S. K. Tiong
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引用次数: 0

摘要

由于生产成本低,钠离子电池(SIB)被认为是下一代可持续大规模储能系统中锂离子电池(LIB)的有吸引力的替代品。然而,在充放电循环过程中,由于钠离子半径大且摩尔数高于锂离子,因此会产生较大的体积应变,进一步导致循环稳定性差和可逆容量低。因此,作为一种有前途的 SIB 负极材料,包括石墨烯及其衍生物和金属氧化物在内的二维(2D)材料因其层状结构和优异的物理和化学特性而备受关注。在电极中加入石墨烯和金属氧化物以及其他纳米材料后,电极的导电性、反应动力学、容量、速率性能和适应大体积变化的能力都得到了显著提高。在这篇综述文章中,将介绍制备技术、结构配置、钠离子存储机制及其电化学性能。随后,还将讨论与二维阳极材料(石墨烯、氧化石墨烯 (GO)、过渡金属氧化物等)和其他类石墨烯基本类似物(锗烯、链烷碱等)分别作为阳极材料相关的 SIB 最新进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High-Performance Sodium-Ion Batteries with Graphene: An Overview of Recent Developments and Design

High-Performance Sodium-Ion Batteries with Graphene: An Overview of Recent Developments and Design

Due to their low production cost, sodium-ion batteries (SIBs) are considered attractive alternatives to lithium-ion batteries (LIBs) for next generation sustainable and large-scale energy storage systems. However, during the charge/discharge cycle, a large volume strain is resulted due to the presence of a large radius of sodium ions and high molar compared to lithium ions, which further leads to poor cyclic stability and lower reversible capacity. In the past, researchers have devoted significant efforts to explore various anode materials to achieve SIBs with high energy density. Hence, as a promising anode material for SIBs, the two-dimensional (2D) materials including graphene and its derivatives and metal oxides have attracted remarkable attention due to their layered structure and superior physical and chemical properties. The inclusion of graphene and metal oxides with other nanomaterials in electrodes have led to the significant enhancements in electrical conductivity, reaction kinetics, capacity, rate performance and accommodating the large volume change respectively. Moreover, these 2D materials facilitated large surface areas and shorter paths for sodium ion adsorption and transportation respectively. In this review article, the fabrication techniques, structural configuration, sodium ion storage mechanism and its electrochemical performances will be introduced. Subsequently, an insight into the recent advancements in SIBs associated with 2D anode materials (graphene, graphene oxide (GO), transition metal oxides etc.) and other graphene-like elementary analogues (germanene, stanine etc.) as anode materials respectively will be discussed. Finally, the key challenges and future perspectives of SIBs towards enhancing the sodium storage performance of graphene-based electrode materials are discussed. In summary, we believe that this review will shed light on the path towards achieving long-cycling life, low operation cost and safe SIBs with high energy density using 2D anode materials and to be suitably commercialized for large-scale energy storage applications in the future.

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来源期刊
ChemSusChem
ChemSusChem 化学-化学综合
CiteScore
15.80
自引率
4.80%
发文量
555
审稿时长
1.8 months
期刊介绍: ChemSusChem Impact Factor (2016): 7.226 Scope: Interdisciplinary journal Focuses on research at the interface of chemistry and sustainability Features the best research on sustainability and energy Areas Covered: Chemistry Materials Science Chemical Engineering Biotechnology
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