ZnO nanoconfined 3D porous carbon composite microspheres to stabilize lithium nucleation/growth for high-performance lithium metal anodes

被引:49
作者
Tang, Linsheng [1 ,2 ]
Zhang, Rui [1 ,2 ]
Zhang, Xinyue [5 ]
Zhao, Naiqin [1 ,2 ,3 ,4 ]
Shi, Chunsheng [1 ,2 ]
Liu, Enzuo [1 ,2 ,3 ]
Ma, Liying [1 ,2 ]
Luo, Jiayan [5 ]
He, Chunnian [1 ,2 ,3 ,4 ]
机构
[1] Tianjin Univ, Sch Mat Sci & Engn, Tianjin 300072, Peoples R China
[2] Tianjin Univ, Tianjin Key Lab Composites & Funct Mat, Tianjin 300072, Peoples R China
[3] Collaborat Innovat Ctr Chem Sci & Engn, Tianjin 300072, Peoples R China
[4] Tianjin Univ, Key Lab Adv Ceram & Machining Technol, Minist Educ, Tianjin 300072, Peoples R China
[5] Tianjin Univ, Sch Chem Engn & Technol, Minist Educ, Key Lab Green Chem Technol, Tianjin 300072, Peoples R China
基金
中国国家自然科学基金;
关键词
DEPOSITION; ELECTROLYTES; BATTERIES; FIBERS; LAYER;
D O I
10.1039/c9ta06401j
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
Lithium metal anodes have attracted considerable attention due to their high specific capacity (3860 mA h g(-1)). However, the volume change and the lithium dendritic growth of Li metal anodes impede their practical application. Researchers have improved the performance of lithium metal anodes by loading lithiophilic materials on 3D current collectors as lithium hosts. Nevertheless, the lithiophilic materials without spatial confinement may undergo severe volume and location changes during the cycling, leading to inhomogeneous lithium deposition, decayed structural stability and electrochemical performance. Herein, lithiophilic ZnO nanoparticle confined 3D porous carbon composite microspheres (3D ZnO@PCCMs) as hosts for lithium metal anodes were developed through a facile and scalable in situ strategy to mitigate the above formidable problems. The microsphere consists of several tens of interconnected empty carbon nanoboxes with ultra-small ZnO nanocrystals embedded in-plane. In the constructed architecture, the ZnO nanoparticles confined within ultrathin carbon walls can effectively prevent the ZnO from agglomerating and detaching from the current collectors during the cycling, inducing the uniform distribution and structural stability of ZnO for guiding the long-term homogenous lithium deposition, while the abundant interconnected empty boxes can sustain massive lithium deposition and accommodate the volume expansion of lithium during cycling. As a result, the as-obtained electrode with ZnO@PCCMs as a 3D host can achieve a very high coulombic efficiency, durability and stability even at high current density and areal capacity. This work delivers a novel concept that stabilizing the lithiophilic seeds can lead to a more stable and excellent cycling performance for lithium metal anodes, and meanwhile provides a low-cost and industrialized manufacturing approach for high-safety and high-performance lithium metal anodes.
引用
收藏
页码:19442 / 19452
页数:11
相关论文
共 46 条
  • [11] A substrate-influenced three-dimensional unoriented dispersion pathway for dendrite-free lithium metal anodes
    Hu, Mengfei
    Yuan, Yuan
    Guo, Man
    Pan, Yankai
    Long, Donghui
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2018, 6 (30) : 14910 - 14918
  • [12] 3D lithium metal embedded within lithiophilic porous matrix for stable lithium metal batteries
    Jin, Chengbin
    Sheng, Ouwei
    Luo, Jianmin
    Yuan, Huadong
    Fang, Cong
    Zhang, Wenkui
    Huang, Hui
    Gan, Yongping
    Xia, Yang
    Liang, Chu
    Zhang, Jun
    Tao, Xinyong
    [J]. NANO ENERGY, 2017, 37 : 177 - 186
  • [13] Hierarchical Chitin Fibers with Aligned Nanofibrillar Architectures: A Nonwoven-Mat Separator for Lithium Metal Batteries
    Kim, Joong-Kwon
    Kim, Do Hyeong
    Joo, Se Hun
    Choi, Byeongwook
    Cha, Aming
    Kim, Kwang Min
    Kwon, Tae-Hyuk
    Kwak, Sang Kyu
    Kang, Seok Ju
    Jin, Jungho
    [J]. ACS NANO, 2017, 11 (06) : 6114 - 6121
  • [14] Next-Generation Lithium Metal Anode Engineering via Atomic Layer Deposition
    Kozen, Alexander C.
    Lin, Chuan-Fu
    Pearse, Alexander J.
    Schroeder, Marshall A.
    Han, Xiaogang
    Hu, Liangbing
    Lee, Sang-Bok
    Rubloff, Gary W.
    Noked, Malachi
    [J]. ACS NANO, 2015, 9 (06) : 5884 - 5892
  • [15] Surface Layer and Morphology of Lithium Metal Electrodes
    Kuwata, Hiroko
    Sonoki, Hidetoshi
    Matsui, Masaki
    Matsuda, Yasuaki
    Imanishi, Nobuyuki
    [J]. ELECTROCHEMISTRY, 2016, 84 (11) : 854 - 860
  • [16] Surface graphited carbon scaffold enables simple and scalable fabrication of 3D composite lithium metal anode
    Lang, Jialiang
    Jin, Yang
    Luo, Xinyi
    Liu, Zhenglian
    Song, Jianan
    Long, Yuanzheng
    Qi, Longhao
    Fang, Minghao
    Li, Zhengcao
    Wu, Hui
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (36) : 19168 - 19174
  • [17] 3D Porous Cu Current Collector/Li-Metal Composite Anode for Stable Lithium-Metal Batteries
    Li, Qi
    Zhu, Shoupu
    Lu, Yingying
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2017, 27 (18)
  • [18] The synergetic effect of lithium polysulfide and lithium nitrate to prevent lithium dendrite growth
    Li, Weiyang
    Yao, Hongbin
    Yan, Kai
    Zheng, Guangyuan
    Liang, Zheng
    Chiang, Yet-Ming
    Cui, Yi
    [J]. NATURE COMMUNICATIONS, 2015, 6
  • [19] Lin DC, 2017, NAT NANOTECHNOL, V12, P194, DOI [10.1038/nnano.2017.16, 10.1038/NNANO.2017.16]
  • [20] Uniform Lithium Nucleation/Growth Induced by Lightweight Nitrogen-Doped Graphitic Carbon Foams for High-Performance Lithium Metal Anodes
    Liu, Lin
    Yin, Ya-Xia
    Li, Jin-Yi
    Wang, Shu-Hua
    Guo, Yu-Guo
    Wan, Li-Jun
    [J]. ADVANCED MATERIALS, 2018, 30 (10)