Plane-controlledgrowthstrategyimproveselectrochemicalperformanceofcobalt-freeLiNi0.9Mn0.1O2cathode

被引:0
作者
Hao Tong [1 ]
Xun Yuan [2 ]
Ningbo Qin [3 ]
Yaocong Han [4 ]
Yan Cheng [1 ]
Fangli Ji [2 ]
Ruirui Tuo [2 ]
Changlang Liang [1 ]
Yi Wang [1 ]
Qilin Tong [1 ]
Zhaozhe Yu [1 ]
机构
[1] Guangxi Key Laboratory of Manufacturing Systems and Advanced Manufacturing Technology, Guilin University of Electronic Technology
[2] Guangxi CNGR New Energy Science & Technology Co, LTD
[3] Guangxi Institute of Science and Technology Development Co, LTD
[4] School of Chemistry and Chemical Engineering, Guangxi Minzu
关键词
D O I
暂无
中图分类号
TM912 [蓄电池]; TQ131.11 [];
学科分类号
摘要
The ultra-high nickel-layered cathodes(Ni ≥ 90 %) has garnered significant attention due to its high specific capacity. However, the widespread application of ultra-high nickel-layered cathodes still suffers limitation by structural instability and poor rate performance. Herein, a crystal-face-induced strategy is proposed to enhance rate and cycling performances of the electrode by constructing rapid Li+diffusion channel and reducing internal grain boundaries of secondary particles. The crystal-face-induced strategy facilitates the growth of {010} lattice plane. Highly exposed {010} planes provide wide-open and unobstructed channels for Li+deintercalation/intercalation, enhances the electrode diffusion kinetics, and thus improves the electrode rate performance. In addition, this strategy promotes the primary particle growth, reduces the grain boundaries of secondary particles and mitigates the electrode/electrolyte interface side reactions, enhancing the structural stability and cycling life of the electrode. Accordingly, the modified sample achieved a reversible specific capacity of 198.3 mAh g-1at 1 C(1 C = 180 mA g-1) and maintained a capacity retention rate of 88.5 % after 100 cycles, higher than that of the original sample(73.6 %, 146 mAh g-1). At the high rate of 5 C, it can maintain a high specific capacity of 178mAh g-1(capacity retention rate of 99 %) after 150 cycles. This work is a leap in ultra-high nickel-layered cathodes development and provides insights into the design of electrode materials for other batteries.
引用
收藏
页码:569 / 577
页数:9
相关论文
共 49 条
  • [1] Element doping induced microstructural engineering enhancing the lithium storage performance of high-nickel layered cathodes
    Zhizhan Li
    Xiao Huang
    Jianing Liang
    Jinlei Qin
    Rui Wang
    Jinguo Cheng
    Deli Wang
    [J]. Journal of Energy Chemistry, 2023, 77 (02) : 461 - 468
  • [2] Progress in electrode materials for the industrialization of sodium-ion batteries.[J].Zhaoxin Guo;Guangdong Qian;Chunying Wang;Ge Zhang;Ruofan Yin;Wei-Di Liu;Rui Liu;Yanan Chen;.Progress in Natural Science:Materials International.2023, 01
  • [3] Enhancing structure and cycling stability of Ni-rich layered oxide cathodes at elevated temperatures via dual-function surface modification
    Ying-De Huang
    Han-Xin Wei
    Pei-Yao Li
    Yu-Hong Luo
    Qing Wen
    Ding-Hao Le
    Zhen-Jiang He
    Hai-Yan Wang
    You-Gen Tang
    Cheng Yan
    Jing Mao
    Ke-Hua Dai
    Xia-Hui Zhang
    Jun-Chao Zheng
    [J]. Journal of Energy Chemistry , 2022, (12) : 301 - 309
  • [4] Ultrafastly activated needle coke as electrode material for supercapacitors.[J].Cuihua Zeng;Cunpeng Duan;Zhaoxin Guo;Zhedong Liu;Shuming Dou;Qunyao Yuan;Peng Liu;Jingchao Zhang;Jiawei Luo;Weidi Liu;Jinfeng Zhang;Yanan Chen;Wenbin Hu;.Progress in Natural Science:Materials International.2022, 06
  • [5] B-doped and La4NiLiO8-coated Ni-rich cathode with enhanced structural and interfacial stability for lithium-ion batteries
    Lingjun Li
    Lizhi Fu
    Miao Li
    Chu Wang
    Zixiang Zhao
    Shangchen Xie
    Haichen Lin
    Xianwen Wu
    Haodong Liu
    Li Zhang
    Qiaobao Zhang
    Lei Tan
    [J]. Journal of Energy Chemistry, 2022, 71 (08) : 588 - 594
  • [6] The mechanism of side reaction induced capacity fading of Ni-rich cathode materials for lithium ion batteries
    Daozhong Hu
    Yuefeng Su
    Lai Chen
    Ning Li
    Liying Bao
    Yun Lu
    Qiyu Zhang
    Jing Wang
    Shi Chen
    Feng Wu
    [J]. Journal of Energy Chemistry , 2021, (07) : 1 - 8
  • [7] Remarkable improvement of cyclic stability in Li-O_2 batteries using ruthenocene as a redox mediator.[J].Cuicui Zhu;Yiping Wang;Ling Shuai;Yizhao Tang;Ming Qiu;Jian Xie;Jia Liu;Wen Wen;Hengquan Chen;Suifei Nan;Mei Dou;Qinggang He;.Chinese Chemical Letters.2020, 07
  • [8] Tuning Dopant Distribution for Stabilizing the Surface of High‐Nickel Layered Oxide Cathodes for Lithium‐Ion Batteries.[J].Chen Liu;Zehao Cui;Arumugam Manthiram.Advanced Energy Materials.2023, 3
  • [9] Near-surface reconstruction in Ni-rich layered cathodes for high-performance lithium-ion batteries.[J].Ryu Hoon Hee;Lim Hyung Woo;Lee Sin Gyu;Sun Yang Kook.Nature Energy.2023, 1
  • [10] Intergranular Shielding for Ultrafine-Grained Mo-Doped Ni-Rich Li[Ni0.96Co0.04]O2 Cathode for Li-Ion Batteries with High Energy Density and Long Life..[J].Park GeonTae;Kim SuBin;Namkoong Been;Ryu JiHyun;Yoon JungIn;Park NamYung;Kim MyoungChan;Han SangMun;Maglia Filippo;Sun YangKook.Angewandte Chemie (International ed. in English).2023, 52