Suitable binder for Li-ion battery anode produced from rice husk

被引:0
|
作者
Seiji Kumagai
Yusuke Abe
Masahiro Tomioka
Mahmudul Kabir
机构
[1] Akita University,Department of Mathematical Science and Electrical
[2] Akita University,Electronic
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Rice husk (RH) is a globally abundant and sustainable bioresource composed of lignocellulose and inorganic components, the majority of which consist of silicon oxides (approximately 20% w/w in dried RH). In this work, a RH-derived C/SiOx composite (RHC) was prepared by carbonization at 1000 °C for use in Li-ion battery anodes. To find a suitable binder for RHC, the RHC-based electrodes were fabricated using two different contemporary aqueous binders: polyacrylic acid (PAA) and a combination of carboxymethyl cellulose and styrene butadiene rubber (CMC/SBR). The rate and cycling performances of the RHC electrodes with respect to the insertion/extraction of Li ions were evaluated in a half-cell configuration. The cell was shorted for 24 h to completely lithiate the RHC. Impedance analysis was conducted to identify the source of the increase in the resistance of the RHC electrodes. The RHC electrode fabricated using PAA exhibited higher specific capacity for Li-ion extraction during the cycling test. The PAA binder strengthened the electrode and alleviated the increase in electrode resistance caused by the formation of the interphase film. The high affinity of PAA for SiOx in RHC was responsible for the stabilization of the anodic performance of Li-ion batteries.
引用
收藏
相关论文
共 50 条
  • [31] Evaluation on a water-based binder for the graphite anode of Li-ion batteries
    Zhang, SS
    Xu, K
    Jow, TR
    JOURNAL OF POWER SOURCES, 2004, 138 (1-2) : 226 - 231
  • [32] A binder-free Si-based anode for Li-ion batteries
    Zhang, Chunqian
    Yang, Fan
    Zhang, Dalin
    Zhang, Xu
    Xue, Chunlai
    Zuo, Yuhua
    Li, Chuanbo
    Cheng, Buwen
    Wang, Qiming
    RSC ADVANCES, 2015, 5 (21) : 15940 - 15943
  • [33] Nanoparticle iron-phosphate anode material for Li-ion battery
    Son, D
    Kim, E
    Kim, TG
    Kim, MG
    Cho, JH
    Park, B
    APPLIED PHYSICS LETTERS, 2004, 85 (24) : 5875 - 5877
  • [34] Anode material NbO for Li-ion battery and its electrochemical properties
    Jian Li
    Wen-Wen Liu
    Hong-Ming Zhou
    Zhong-Zhong Liu
    Bao-Rong Chen
    Wen-Jiao Sun
    Rare Metals, 2018, 37 : 118 - 122
  • [35] Recycling of polyethylene via hydrothermal carbonization for the Li-ion battery anode
    Hong, Soonhyun
    Ku, Jahun
    Park, Sunhye
    Park, Jungjin
    Yu, Young-Sang
    Kim, Chunjoong
    CARBON LETTERS, 2024, 34 (05) : 1529 - 1536
  • [36] Anode material NbO for Li-ion battery and its electrochemical properties
    Jian Li
    Wen-Wen Liu
    Hong-Ming Zhou
    Zhong-Zhong Liu
    Bao-Rong Chen
    Wen-Jiao Sun
    Rare Metals, 2018, 37 (02) : 118 - 122
  • [37] Tin-Graphene Anode Boosts Li-Ion Battery Capacity
    不详
    CHEMICAL ENGINEERING PROGRESS, 2011, 107 (09) : 14 - 14
  • [38] High capacity carbon anode for Li-ion battery - A theoretical explanation
    Tokumitsu, K
    Fujimoto, H
    Mabuchi, A
    Kasuh, T
    CARBON, 1999, 37 (10) : 1599 - 1605
  • [39] Nanostructured Anode Material for Li-Ion Battery Obtained by Galvanic Process
    Cocchiara, Cristina
    Inguanta, Rosalinda
    Piazza, Salvatore
    Sunseri, Carmelo
    INTERNATIONAL CONFERENCE ON NANOTECHNOLOGY BASED INNOVATIVE APPLICATIONS FOR THE ENVIRONMENT, 2016, 47 : 73 - 78
  • [40] Graphene nanonetwork embedded with polyaniline nanoparticles as anode of Li-ion battery
    Fu, Haiyang
    Gao, Bo
    Qiao, Yuan
    Zhu, Wenhui
    Liu, Zhuang
    Wei, Gaoyu
    Feng, Zhongbao
    Kamali, Ali Reza
    CHEMICAL ENGINEERING JOURNAL, 2023, 477