A Review on the Development Trend of Transition Metal-based Anode Material for Sodium-ion Battery (SIB) Performance Improvement

被引:0
作者
Kim M. [1 ]
Pak J.J. [1 ]
机构
[1] School of Electrical Engineering, Korea University, Seoul
基金
新加坡国家研究基金会;
关键词
anode; battery; capacity; Lithium ion; sodium ion; Sodium Ion Battery; transition metal dichalcogenide; Transition metal oxide;
D O I
10.5370/KIEE.2023.72.3.406
中图分类号
学科分类号
摘要
While lithium-ion battery (LIB) is limited in its large-scale energy storage usage due to the scarcity of lithium resource, sodium-ion battery (SIB) is a promising alternative to LIB in the field of large-scale energy storage since sodium is abundant resource. When the chemical reaction of SIB is converted into electrical energy, sodium ions are inserted more slowly because the radius of the sodium ion is larger than lithium ion, which causes a decrease in capacitance, deforms the structure in the electrode, and deteriorates the electrochemical performance. To solve this problem, the development of SIB anode material with high capacity and structural stability is investigated. Transition metal oxide (TMO) and transition metal dichalcogenide (TMD) are considered to be promising anode materials for SIB since they have high capacity and high energy density. The review of the edvelopment trend of TMO-based anode material for SID performance improvement will lead us to realize better SIB. Copyright © The Korean Institute of Electrical Engineers.
引用
收藏
页码:406 / 412
页数:6
相关论文
共 26 条
[1]  
Palomares Veronica, Et al., Update on Na-based battery materials. A growing research path, Energy & Environmental Science, 6, 8, pp. 2312-2337, (2013)
[2]  
Huang Taohua, Et al., Semiconducting borophene as a promising anode material for Li-ion and Na-ion batteries, Materials Science in Semiconductor Processing, 89, pp. 250-255, (2019)
[3]  
Bauer Alexander, Et al., The scale-up and commercialization of nonaqueous Na-ion battery technologies, Advanced Energy Materials, 8, 17, (2018)
[4]  
Munoz-Marquez Miguel Angel, Et al., Structure, Composition, Transport Properties, and Electrochemical Performance of the Electrode-Electrolyte Interphase in Non-Aqueous Na-Ion Batteries, Advanced Materials Interfaces, 9, 8, (2022)
[5]  
Palomares Veronica, Et al., Update on Na-based battery materials. A growing research path, Energy & Environmental Science, 6, 8, pp. 2312-2337, (2013)
[6]  
Zhang Zhijia, Et al., Recent progress on three-dimensional nanoarchitecture anode materials for lithium/sodium storage, Journal of Materials Science & Technology, (2022)
[7]  
Slater Michael D., Et al., Sodium-ion batteries, Advanced Functional Materials, 23, 8, pp. 947-958, (2013)
[8]  
Jiang Yu, Et al., Design Nitrogen (N) and Sulfur (S) Co -Doped 3D Graphene Network Architectures for High-Performance Sodium Storage, Small, 14, 10, (2018)
[9]  
Sawhney M. Anne, Et al., Process-Structure-Formulation Interactions for Enhanced Sodium Ion Battery Development: A Review, ChemPhysChem, 23, 5, (2022)
[10]  
Huang Xiang Long, Dou Shi Xue, Wang Zhiming M., Fibrous cathode materials for advanced sodium-chalcogen batteries, Energy Storage Materials, 45, pp. 265-280, (2022)