Development of covalent-bonded organic/carbon anode for sodium-ion battery

被引:12
|
作者
Ha, Hyunho [1 ,2 ]
Nam, Seunghoon [2 ]
Jeong, Soo-Hwan [1 ]
Hyun, Seungmin [2 ]
机构
[1] Kyungpook Natl Univ, Dept Appl Chem Engn, Gyeongsangbuk Do, South Korea
[2] Korea Inst Machinery & Mat, Dept Appl Nano Mech, Daejeon, South Korea
关键词
Na battery; Organic electrode; Covalent bonding; HIGH-CAPACITY; CATHODE MATERIALS; LITHIUM; PERFORMANCE; ELECTRODE; FRAMEWORKS; MECHANISM; GRAPHENE; DESIGN;
D O I
10.1007/s12206-019-0730-2
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Sodium (Na) organic batteries have attracted great attention because of high abundance of Na, low-production cost, and structure diversity of organic electrode materials. Despite the efforts on organic Na-ion batteries, organic electrodes are still vulnerable to conventional electrolytes, and have a low conductivity which leads to continuous capacity fading and low-rate capability, respectively. In this study, we aimed to reduce solubility in electrolyte and enhance electrical conductivity of organic electrode by anchoring 2,5- dihydroxyterephtalic acid (DHTPA) to carbon black via esterification. Then, the sodiated DHTPA/CB powder was evaluated for an anode in Na-ion battery. The covalent-bonded organic/carbon black electrode retained 90 % of the initial capacity even after 100 cycles, and also showed excellent rate capability up to 1500 mA/g. The result sheds light on the commercialization of organic-based Na-ion batteries, and their large-scale applications to electric vehicles (EVs) and energy storage systems (ESSs) markets.
引用
收藏
页码:3865 / 3870
页数:6
相关论文
共 50 条
  • [21] Influence of carbon and fluorine on potassium niobate anode material for sodium-ion battery applications
    Rao, Y. Bhaskara
    Ohlin, C. Andre
    SUSTAINABLE ENERGY & FUELS, 2025, 9 (08): : 2217 - 2227
  • [22] Longitudinally grown pyrolyzed quinacridones for sodium-ion battery anode
    Chae, Seongwook
    Lee, Taewoong
    Kwon, Woong
    Kang, Haisu
    Seo, Hyeok Jun
    Kim, Eunji
    Jeong, Euigyung
    Lee, Jin Hong
    Lee, Seung Geol
    CHEMICAL ENGINEERING JOURNAL, 2023, 453
  • [23] Rechargeable Sodium-Ion Battery Based on Polyazaacene Analogue Anode
    Zhang, Meng
    Tong, Yifan
    Xie, Jian
    Huang, Weiwei
    Zhang, Qichun
    CHEMISTRY-A EUROPEAN JOURNAL, 2021, 27 (67) : 16754 - 16759
  • [24] Carbon Nanosheet Anode for Sodium-Ion Storage and Its Application in Sodium-Ion Hybrid Capacitors
    Chen, Li
    Duan, Wenhui
    Yang, Bingjun
    Liu, Bao
    Li, Hongxia
    Lang, Junwei
    Chen, Jiangtao
    CHEMISTRYSELECT, 2020, 5 (19): : 5824 - 5830
  • [25] Rational manipulation of electrolyte to induce homogeneous SEI on hard carbon anode for sodium-ion battery
    Liu, Lu
    Xiao, Lingling
    Sun, Zhi
    Bashir, Shahid
    Kasi, Ramesh
    Gu, Yonghong
    Subramaniam, Ramesh
    JOURNAL OF ENERGY CHEMISTRY, 2024, 94 : 414 - 429
  • [26] Hierarchical MoS2/carbon composites as superior anode for advanced sodium-ion battery
    Bai, Li
    Liang, Feixia
    IONICS, 2022, 28 (07) : 3341 - 3345
  • [27] Spartina alterniflora-derived porous carbon using as anode material for sodium-ion battery
    Cheng, Hongkuan
    Tang, ZheRen
    Luo, Xingzhang
    Zheng, Zheng
    SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 777
  • [28] A New Porous Metallic Carbon Allotrope with Interlocking Pentagons for Sodium-Ion Battery Anode Material
    Ni, Dongyuan
    Guo, Yaguang
    Shen, Yupeng
    Wang, Qian
    ADVANCED THEORY AND SIMULATIONS, 2021, 4 (06)
  • [29] Carbon nanoflakes as a promising anode for sodium-ion batteries
    Zhu, Xiaocui
    Savilov, S., V
    Ni, Jiangfeng
    Li, Liang
    FUNCTIONAL MATERIALS LETTERS, 2018, 11 (06)
  • [30] Hard carbon anode materials for sodium-ion batteries
    El Moctar, Ismaila
    Ni, Qiao
    Bai, Ying
    Wu, Feng
    Wu, Chuan
    FUNCTIONAL MATERIALS LETTERS, 2018, 11 (06)