Reversible silicon anodes enabled by fluorinated inorganic-organic hybrid coating

被引:1
|
作者
Fang, Jiabin [1 ]
Wu, Kang [1 ]
Qin, Lijun [1 ]
Li, Jianguo [1 ]
Li, Aidong [2 ]
Feng, Hao [1 ]
机构
[1] Xian Modern Chem Res Inst, Lab Mat Surface Engn & Nanofabricat, Sci & Technol Combust & Explos Lab, Xian 710065, Peoples R China
[2] Nanjing Univ, Dept Mat Sci & Engn, Natl Lab Solid State Microstruct, Nanjing 210093, Peoples R China
关键词
molecular layer deposition; fluorinated interface; cycling stability; silicon anodes; lithium-ion batteries; ATOMIC/MOLECULAR LAYER DEPOSITION; LITHIUM-ION BATTERIES; ELECTROLYTE INTERPHASE; SURFACE-COATINGS; THICK ELECTRODE; PERFORMANCE; CAPACITY; INTERFACES; CHEMISTRY; STORAGE;
D O I
10.1016/j.jcis.2024.10.104
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
Silicon anodes deliver batteries with energy densities much higher than those based on today's dominant graphite anodes. However, they commonly exhibit huge volume variations and unfavorable interface stability, causing a gradually diminishing capacity on extended cycling. Most Si-based batteries consisting Si/C composites in industry can only use a very limited amount of Si (<30 % by weight). Exploiting molecular layer deposition (MLD) technique, a fluorine-rich flexible inorganic-organic hybrid alucone (AlFHQ) shell is controllably deposited onto Si electrodes. Employing ex situ XPS and AFM, the AlFHQ film presents reversible electrochemical evolutions in terms of composition and morphology. The interactions the between Li+ and -O-2,3,5,6-fluorobenzene functional groups help to construct a mechanically-chemically robust LiF-rich hybrid solid electrolyte interphase (SEI) on Si anode, delivering enhanced interfacial stability and integrity of electrode. An optimized coating thickness (approximate to 5 nm) for interfacial stabilization and Li+ transport kinetics is demonstrated, namely, Si@AlFHQ-20. The reported fluorine-rich hybrid modification technique endows (a), stable cycling of Si anode (approximate to 3.8 mAh cm(-2)) with an ultrahigh initial Coulombic efficiency (ICE) of 92.3 %; (b), enhanced rate capability of 1468 mAh/g at 2.0 A g(-1) and good cycling performance; and (c), overall cell (Si@AlFHQ-20//LiCoO2@Al2O3) operational stability for more than 100 cycles under stringent cathode conditions (2.68 mAh cm(-2), high cutoff voltage at 4.55 V).
引用
收藏
页码:819 / 829
页数:11
相关论文
共 50 条
  • [31] Design and synthesis of inorganic-organic hybrid microstructures
    Harreld, JH
    Dunn, B
    Nazar, LF
    INTERNATIONAL JOURNAL OF INORGANIC MATERIALS, 1999, 1 (02): : 135 - 146
  • [32] Ethanol Processable Inorganic-Organic Hybrid Hole Transporting Layers Enabled 20.12 % Efficiency Organic Solar Cells
    Li, Hongjia
    Li, Yinfeng
    Dai, Xingjian
    Xu, Xiaopeng
    Peng, Qiang
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2024,
  • [33] Hybrid inorganic-organic mesoporous molecular sieves
    Koya, M
    Nakajima, H
    MESOPOROUS MOLECULAR SIEVES 1998, 1998, 117 : 243 - 248
  • [34] Inorganic-organic hybrid materials and their adsorbent properties
    Asgar Kayan
    Advanced Composites and Hybrid Materials, 2019, 2 : 34 - 45
  • [35] Fracture toughness of inorganic-organic hybrid coatings
    Ballard, RL
    Sailer, RA
    Larson, B
    Soucek, MD
    JOURNAL OF COATINGS TECHNOLOGY, 2001, 73 (913): : 107 - 114
  • [36] Functionalized coating materials based on inorganic-organic polymers
    Haas, KH
    Amberg-Schwab, S
    Rose, K
    THIN SOLID FILMS, 1999, 351 (1-2) : 198 - 203
  • [37] Preparation of a superhydrophobic surface by mixed inorganic-organic coating
    Ferrari, Michele
    Ravera, Francesca
    Liggieri, Libero
    APPLIED PHYSICS LETTERS, 2006, 88 (20)
  • [39] Inorganic-organic hybrid white light phosphors
    Wang, Ming-Sheng
    Guo, Guo-Cong
    CHEMICAL COMMUNICATIONS, 2016, 52 (90) : 13194 - 13204
  • [40] Synthesis and application of inorganic-organic hybrid flocculent
    Li, Lei
    Wang, Guanghua
    Li, Wenbing
    Liu, Wenmin
    Liu, Qi
    Yang, Shuqin
    Chen, Kun
    Wang, Xiaoshuang
    Li, Jing
    ADVANCES IN CHEMICAL ENGINEERING, PTS 1-3, 2012, 396-398 : 1940 - +