Scalable Composites Benefiting from Transition-Metal Oxides as Cathode Materials for Efficient Lithium-Sulfur Batteries

被引:17
|
作者
Marangon, Vittorio [1 ]
Scaduti, Eugenio [2 ]
Vinci, Viviana Fatima [2 ]
Hassoun, Jusef [1 ,2 ,3 ]
机构
[1] Ist Italiano Tecnol, Graphene Labs, Via Morego 30, I-16163 Genoa, Italy
[2] Univ Ferrara, Dept Chem Pharmaceut & Agr Sci, Via Fossato di Mortara 17, I-44121 Ferrara, Italy
[3] Univ Ferrara, Natl Interuniv Consortium Mat Sci & Technol INSTM, Res Unit, Via Fossato di Mortara 17, I-44121 Ferrara, Italy
关键词
S-MnO2; S-TiO2; Li-S batteries; scalability; long-life cycling; HIGH-PERFORMANCE; HIGH-CAPACITY; CARBON; ELECTRODE; SURFACE; ANODE; LINO3;
D O I
10.1002/celc.202200374
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Composite materials achieved by including transition-metal oxides with different structures and morphologies in sulfur are suggested as scalable cathodes for high-energy lithium-sulfur (Li-S) batteries. The composites contain 80 wt.% sulfur and 20 wt.% of either MnO2 or TiO2, leading to a sulfur content in the electrode of 64 wt.% and revealing a reversible, fast, and lowly polarized conversion process in the cell with limited interphase resistance. The S-TiO2 composite exhibits an excellent rate capability between C/10 and 2C, and a cycle life extended over 400 cycles at 2C, owing to the effects of the nanometric TiO2 additive in boosting the reaction kinetics. Instead, the micrometric sized particles of MnO2 partially limit the electrochemical activity of S-MnO2 to the current rate of 1C. Nevertheless, both S-MnO2 and S-TiO2 withstand a sulfur loading up to values approaching 6 mg cm(-2), and deliver an areal capacity ranging from about 4.5 to 5.5 mAh cm(-2) at C/5. The excellent performances of the metal oxide-sulfur electrodes, even at high active material loading, and the possible scalability of the synthetic pathway adopted in the work suggest that the composites are viable cathodes for next-generation Li-S batteries with high energy density and efficient electrochemical process.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Applications of transition-metal sulfides in the cathodes of lithium-sulfur batteries
    Zuo, Jing-Han
    Gong, Yong-Ji
    TUNGSTEN, 2020, 2 (02) : 134 - 146
  • [2] Hybrid cathode materials for lithium-sulfur batteries
    Choudhury, Soumyadip
    CURRENT OPINION IN ELECTROCHEMISTRY, 2020, 21 : 303 - 310
  • [3] A review of cathode materials in lithium-sulfur batteries
    Yang, Liwen
    Li, Qian
    Wang, Yang
    Chen, Yanxiao
    Guo, Xiaodong
    Wu, Zhenguo
    Chen, Guang
    Zhong, Benhe
    Xiang, Wei
    Zhong, Yanjun
    IONICS, 2020, 26 (11) : 5299 - 5318
  • [4] A review of cathode materials in lithium-sulfur batteries
    Liwen Yang
    Qian Li
    Yang Wang
    Yanxiao Chen
    Xiaodong Guo
    Zhenguo Wu
    Guang Chen
    Benhe Zhong
    Wei Xiang
    Yanjun Zhong
    Ionics, 2020, 26 : 5299 - 5318
  • [5] Application of Metal Compounds in Cathode Materials and Interlayers for Lithium-Sulfur Batteries
    Hu, Kun
    Guo, Jin
    Zhang, Mingang
    Lian, Jinyi
    Zhang, Yixuan
    Li, Zhanlong
    Cailiao Daobao/Materials Reports, 2022, 36 (19):
  • [6] Sulfur/bamboo charcoal composites cathode for lithium-sulfur batteries
    Cheng, J. J.
    Pan, Y.
    Pan, J. A.
    Song, H. J.
    Ma, Z. S.
    RSC ADVANCES, 2015, 5 (01) : 68 - 74
  • [7] Recent advances of polar transition-metal sulfides host materials for advanced lithium-sulfur batteries
    Chen, Liping
    Li, Xifei
    Xu, Yunhua
    FUNCTIONAL MATERIALS LETTERS, 2018, 11 (06)
  • [8] The strategies of advanced cathode composites for lithium-sulfur batteries
    Kuan Zhou
    XiaoJing Fan
    XiangFeng Wei
    JieHua Liu
    Science China Technological Sciences, 2017, 60 : 175 - 185
  • [9] The strategies of advanced cathode composites for lithium-sulfur batteries
    Zhou, Kuan
    Fan, XiaoJing
    Wei, XiangFeng
    Liu, JieHua
    SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2017, 60 (02) : 175 - 185
  • [10] The strategies of advanced cathode composites for lithium-sulfur batteries
    ZHOU Kuan
    FAN XiaoJing
    WEI XiangFeng
    LIU JieHua
    Science China(Technological Sciences), 2017, 60 (02) : 175 - 185