Novel polymer-graphite composite grid as a negative current collector for lead-acid batteries

被引:31
|
作者
Zhang, Shukai [1 ]
Zhang, Hao [2 ]
Cheng, Jie [2 ]
Zhang, Wenfeng [2 ]
Cao, Gaoping [2 ]
Zhao, Hailei [1 ]
Yang, Yusheng [1 ,2 ]
机构
[1] Univ Sci & Technol Beijing, Sch Mat Sci & Engn, Beijing 100083, Peoples R China
[2] Res Inst Chem Def, West Bldg,35 Huayuanbei Rd, Beijing 100191, Peoples R China
关键词
Polymer-graphite composite; Lead-acid battery; Negative current collector; Chemical deposition; Hydrogen evolution; Cycle performance; RETICULATED VITREOUS CARBON; OF-CHARGE OPERATION; PEM FUEL-CELLS; ELECTROCHEMICAL-BEHAVIOR; ACTIVATED CARBON; BIPOLAR PLATES; CYCLE LIFE; ELECTRODE; PERFORMANCE; ENERGY;
D O I
10.1016/j.jpowsour.2016.09.097
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We design a novel polymer-graphite composite grid as the negative current collector for lead-acid batteries. With this novel grid, the negative active material (NAM) can deliver a specific capacity of 170 mAh g(-1) at a discharge rate of 0.1 C. After that, we conduct structural optimization and surface treatment on the grid to improve its performance. Through the structural optimization, additional "lead pastes can be loaded and the cycle stability of the battery is enhanced. By using the optimized grid, the weight of the negative current collector can be remarkably reduced by more than 50%. To handle the serious hydrogen evolution on the graphite surface and the unfavorable adhesion between graphite and NAM, fine PbSO4 particles are coated onto the surface of the graphite grids by chemical deposition. The cells employing the PbSO4-deposition grids exhibit excellent cycling stability as well as low polarization and then high Coulombic efficiency. We present here a possible mechanism that how PbSO4 deposits effectively enhance the performance of negative plates based on the testing results. (C) 2016 Published by Elsevier B.V.
引用
收藏
页码:31 / 38
页数:8
相关论文
共 50 条
  • [21] STUDY OF LITHIUM-LEAD ALLOYS AS GRID MATERIAL FOR LEAD-ACID BATTERIES
    MAO, GW
    WILSON, TL
    LARSON, JG
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1969, 116 (08) : C283 - &
  • [22] STUDY OF LITHIUM-LEAD ALLOYS AS GRID MATERIAL FOR LEAD-ACID BATTERIES
    MAO, GW
    WILSON, TL
    LARSON, JG
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1970, 117 (10) : 1323 - &
  • [23] Protective properties of lead coating with tin sublayer for copper current leads of negative electrodes in lead-acid batteries
    Kamenev, YB
    Lushina, MV
    Kiselevich, AV
    Rusin, AI
    Ostapenko, EI
    RUSSIAN JOURNAL OF APPLIED CHEMISTRY, 2001, 74 (02) : 224 - 228
  • [24] Protective Properties of Lead Coating with Tin Sublayer for Copper Current Leads of Negative Electrodes in Lead-acid Batteries
    Yu.B. Kamenev
    M.V. Lushina
    A.V. Kiselevich
    A.I. Rusin
    E.I. Ostapenko
    Russian Journal of Applied Chemistry, 2001, 74 : 224 - 228
  • [25] Composite Ti expand grid, a new positive grid for lead-acid battery
    Zhou, Qin
    Zhang, Fu-Li
    Xiong, Tao
    Cao, Jian-Jun
    Dianyuan Jishu/Chinese Journal of Power Sources, 2003, 27 (SUPPL.):
  • [26] A New Model of Lead-Acid Batteries Lifetime in Smart Grid Scenario
    Langella, Roberto
    Testa, Alfredo
    Ventre, Chiara
    2014 IEEE INTERNATIONAL ENERGY CONFERENCE (ENERGYCON 2014), 2014, : 1343 - 1348
  • [27] CURRENT-ACCEPTANCE CONTROLLED CHARGING OF LEAD-ACID BATTERIES
    TAYLOR, DF
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1973, 120 (08) : C225 - C225
  • [28] Corrosion resistance of PbSrSnAl positive grid alloys for lead-acid batteries
    Pang, Fangzhao
    Chen, Xiang
    Li, Xinyu
    Wang, Bingbing
    Wu, Yongxin
    Xiao, Yuhua
    Qu, Xin
    Liu, Xiaowei
    Gao, Shuaibo
    Wang, Dihua
    Yin, Huayi
    ELECTROCHIMICA ACTA, 2025, 519
  • [29] Magnesium systems could rival current lead-acid batteries
    Freemantle, M
    CHEMICAL & ENGINEERING NEWS, 2000, 78 (42) : 8 - 8
  • [30] Corrosion behavior of Pb alloys as negative current collector for lead acid batteries in charged state
    Koura, N
    Kasuya, K
    Ui, K
    Takiguchi, Y
    Idemoto, Y
    ELECTROCHEMISTRY, 2005, 73 (02) : 135 - 140