N-doped C encapsulated Li2TiSiO5 nanoparticles for high-rate highly stable lithium storage

被引:0
作者
Hu, Shifan [1 ]
Zhang, Haojian [1 ]
Zhao, Xiaozheng [1 ]
Bai, Jinquan [1 ]
Das, Soham [2 ]
Wan, Jiayu [3 ]
Zhang, Fang [1 ]
Shen, Laifa [1 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Coll Mat Sci & Technol, Nanjing 210016, Peoples R China
[2] Duke Kunshan Univ, Dept Nat & Appl Sci, Jiangsu, Peoples R China
[3] Shanghai Jiao Tong Univ, Global Inst Future Technol, Future Battery Res Ctr, Shanghai 200240, Peoples R China
关键词
Li2TiSiO5; N -doped carbon coating; Modification; Electrical conductivity; Dynamics analysis; HIGH-PERFORMANCE ANODES; LI-ION BATTERY; ENERGY-STORAGE; ULTRAFAST; PROGRESS; SILICON; CHALLENGES; COMPOSITE; DENSITY;
D O I
10.1016/j.jallcom.2024.174909
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
Achieving high charging rates (<= 15 min) in lithium-ion batteries (LIBs) is imperative for their widespread implementation in all-electric vehicles. However, the pursuit of elevated charging rates often leads to compromises in capacity and cycling stability. In this manuscript, we present a groundbreaking approach utilizing a composite material composed of nitrogen-doped carbon-encapsulated Li2TiSiO5 nanoparticles (LTSO@C-N) as the anode material for LIBs, offering rapid and exceptionally stable lithium storage. The encapsulation of Li2TiSiO5 nanoparticles by nitrogen-doped carbon is realized via a facile liquid-phase polymerization and the following pyrolysis route. The uniformly deposited nitrogen-doped carbon layer on the surface of Li2TiSiO5 nanoparticles within LTSO@C-N serves a dual purpose: enhancing the conductive properties of Li2TiSiO5 to ensure efficient charge transfer and Li+ transport, while concurrently inhibiting grain pulverization over extended cycling periods. The deliberate incorporation of nitrogen-doped carbon optimizes Li2TiSiO5 anode electrochemical performance, simultaneously reducing structural degradation during prolonged cycling. This enhances the lithium-ion battery system's long-term stability and reliability. While exhibiting an average operational potential of approximately 0.28 V in comparison to Li+/Li, the LTSO@C-N electrode manifests a commendable specific capacity of 345 mAh g-1 at a current density of 0.1 A g-1. Notably, it attains a robust lithium storage capability even under high-rate conditions, exemplified by a sustained capacity of 205 mAh g-1 over 1000 cycles at 2 A g-1, devoid of any discernible decay. The electrode's impressive electrochemical performance highlights its potential as an advanced anode for high-performance lithium-ion batteries, ensuring stability.
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页数:9
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共 44 条
  • [11] Experimental and theoretical studies on reduction mechanism of vinyl ethylene carbonate on graphite anode for lithium ion batteries
    Hu, YS
    Kong, WH
    Hong, L
    Huang, XJ
    Chen, LQ
    [J]. ELECTROCHEMISTRY COMMUNICATIONS, 2004, 6 (02) : 126 - 131
  • [12] Toward high energy-density and long cycling-lifespan lithium ion capacitors: a 3D carbon modified low-potential Li2TiSiO5 anode coupled with a lignin-derived activated carbon cathode
    Jin, Liming
    Gong, Ruiqi
    Zhang, Weichao
    Xiang, Yue
    Zheng, Junsheng
    Xiang, Zhonghua
    Zhang, Cunman
    Xia, Yongyao
    Zheng, Jim P.
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (14) : 8234 - 8244
  • [13] Battery materials for ultrafast charging and discharging
    Kang, Byoungwoo
    Ceder, Gerbrand
    [J]. NATURE, 2009, 458 (7235) : 190 - 193
  • [14] CVD-assisted fabrication of hierarchical microparticulate Li2TiSiO5-carbon nanospheres for ultrafast lithium storage
    Kong, Dejia
    Shen, Li
    Mo, Runwei
    Liu, Jiaxu
    Tao, Ran
    Shi, Wenyue
    Ma, Shengxiang
    Zhang, Chen
    Lu, Yunfeng
    [J]. NANOSCALE, 2020, 12 (26) : 13918 - 13925
  • [15] Mesoporous silicon/carbon hybrids with ordered pore channel retention and tunable carbon incorporated content as high performance anode materials for lithium-ion batteries
    Li, Qun
    Yin, Longwei
    Ma, Jingyun
    Li, Zhaoqiang
    Zhang, Zhiwei
    Chen, Ailian
    Li, Caixia
    [J]. ENERGY, 2015, 85 : 159 - 166
  • [16] Insight into effects of niobium on electrospun Li2TiSiO5 fibers as anode materials in lithium-ion batteries
    Li, Yaqian
    Mei, Yueni
    Lan, Xiwei
    Jiang, Yingjun
    Hu, Xianluo
    [J]. MATERIALS RESEARCH BULLETIN, 2021, 136
  • [17] Ti3+ self-doped Li4Ti5O12 with rich oxygen vacancies for advanced lithium-ion batteries
    Liang, Kang
    He, Hanna
    Ren, Yurong
    Luan, Jingyi
    Wang, Haiyan
    Ren, Yu
    Huang, Xiaobing
    [J]. IONICS, 2020, 26 (04) : 1739 - 1747
  • [18] High Volumetric Energy and Power Density Li2TiSiO5 Battery Anodes via Graphene Functionalization
    Lim, Jin-Myoung
    Kim, Sungkyu
    Luu, Norman S.
    Downing, Julia R.
    Tan, Mark T. Z.
    Park, Kyu-Young
    Hechter, Jacob C.
    Dravid, Vinayak P.
    He, Kai
    Hersam, Mark C.
    [J]. MATTER, 2020, 3 (02) : 522 - 533
  • [19] Li2TiSiO5 and expanded graphite nanocomposite anode material with improved rate performance for lithium-ion batteries
    Liu, Jingyuan
    Liu, Yao
    Hou, Mengyan
    Wang, Yonggang
    Wang, Congxiao
    Xia, Yongyao
    [J]. ELECTROCHIMICA ACTA, 2018, 260 : 695 - 702
  • [20] Li2TiSiO5: a low potential and large capacity Ti-based anode material for Li-ion batteries
    Liu, Jingyuan
    Pang, Wei Kong
    Zhou, Tong
    Chen, Long
    Wang, Yonggang
    Peterson, Vanessa K.
    Yang, Zhongqin
    Guo, Zaiping
    Xia, Yongyao
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2017, 10 (06) : 1456 - 1464