Y-Element Doping Improves Electrochemical Performance and Single-Crystal Structural Stability of Cathode LiNi0.8Co0.1Mn0.1O2

被引:4
作者
Zheng, Wenshi [1 ]
Wang, Hao [2 ]
Lu, Shuangyan [1 ]
He, Heming [3 ]
机构
[1] Guangzhou Univ, Sch Civil Engn, Guangzhou 510006, Peoples R China
[2] Chinese Acad Sci, Ningbo Inst Mat Technol & Engn, Ningbo 315201, Peoples R China
[3] Milky Way Sustainable Energy Ltd, Zhuhai 519085, Peoples R China
关键词
lithium-ion batteries; NCM811; single-crystalcathode; doping; high cutoff voltages; Y-element doping; NI-RICH; ENERGY-DENSITY; ION BATTERIES; OXIDE CATHODE; SURFACE; CAPACITY; TRANSITION;
D O I
10.1021/acsaem.3c01449
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
As a typical Ni-rich cathode material for lithium-ion batteries, LiNi0.8Co0.1Mn0.1O2 (NCM811) shows exceptional performance in terms of large capacity and high energy density and has attracted great attention. Compared with polycrystalline NCM811 materials, single-crystalline NCM811 materials effectively eliminated secondary particles, which caused capacity decay and poor stability. However, due to large grain sizes of single crystals, the ion transport path alongside the cathode is long, resulting in a slow ion diffusion rate during the charge-discharge cycles, leading to lower capacity than that of polycrystals. It is an efficient method for raising the capacity of single-crystal materials by altering the charge/discharge voltages to enhance the diffusion rate of Li ions. However, high cutoff voltages lead to excessive Li+ detachment on the grain boundary of the crystal, which in turn can easily cause layer collapse and impede the transportation of Li+, eventually causing irreparable and permanent losses. In this study, Y-element doping was adapted to improve the stability of NCM811 single-crystal cathode materials at high cutoff voltage. Y-O bonds with high binding energy were formed, and the location of the transition metal changed. By this means, the stability of the crystal structure could be improved, but excessive Y doping caused the reduction of lattice spacing, which hindered the diffusion of Li+. Through a series of characterization analyses, it was found that 0.5% Y doping could retain a large lattice spacing and maintain the stability of the lattice Li layer. The capacity retention of the optimized 0.5% Y sample remained at 94.53% after 100 cycles at the voltage window of 2.7-4.5 V, while the capacity retention of the original sample was only 81.25%. The experimental results show that the Y-doped single-crystal NCM811 materials have better stability and higher capacity retention under long cycles. The crystal structure was regulated by Y doping in this work, which gives a notion of modifying the performance of Ni-rich single-crystal materials. This research presents a method for identifying electrode materials and increasing the performance of Li-ion batteries.
引用
收藏
页码:9487 / 9498
页数:12
相关论文
共 59 条
[1]   Achieving high gravimetric energy density for flexible lithium-ion batteries facilitated by core-double-shell electrodes [J].
Balogun, Muhammad-Sadeeq ;
Yang, Hao ;
Luo, Yang ;
Qiu, Weitao ;
Huang, Yongchao ;
Liu, Zhao-Qing ;
Tong, Yexiang .
ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (07) :1859-1869
[2]   Correlation of oxygen non-stoichiometry to the instabilities and electrochemical performance of LiNi0.8Co0.1Mn0.1O2 utilized in lithium ion battery [J].
Bi, Yujing ;
Yang, Wenchao ;
Du, Rui ;
Zhou, Jingjing ;
Liu, Meng ;
Liu, Yang ;
Wang, Deyu .
JOURNAL OF POWER SOURCES, 2015, 283 :211-218
[3]   Toward High-Areal-Capacity Electrodes for Lithium and Sodium Ion Batteries [J].
Chen, Yijun ;
Zhao, Bo ;
Yang, Yuan ;
Cao, Anyuan .
ADVANCED ENERGY MATERIALS, 2022, 12 (44)
[4]   Effect of Surface Modification on Nano-Structured LiNi0.5Mn1.5O4 Spinel Materials [J].
Cho, Hyung-Man ;
Chen, Michael Vincent ;
MacRae, Alex C. ;
Meng, Ying Shirley .
ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (30) :16231-16239
[5]   Challenges in the development of advanced Li-ion batteries: a review [J].
Etacheri, Vinodkumar ;
Marom, Rotem ;
Elazari, Ran ;
Salitra, Gregory ;
Aurbach, Doron .
ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (09) :3243-3262
[6]   Rethinking the Electrode Multiscale Microstructures: A Review on Structuring Strategies toward Battery Manufacturing Genome [J].
Fu, Xuewei ;
Zhou, Yonghan ;
Huang, Jieyang ;
Feng, Lanxiang ;
Yu, Peng ;
Zhang, Qiang ;
Yang, Wei ;
Wang, Yu .
ADVANCED ENERGY MATERIALS, 2023, 13 (32)
[7]   Cycling Behavior of NCM523/Graphite Lithium-Ion Cells in the 3-4.4 V Range: Diagnostic Studies of Full Cells and Harvested Electrodes [J].
Gilbert, James A. ;
Bareno, Javier ;
Spila, Timothy ;
Trask, Stephen E. ;
Miller, Dean J. ;
Polzin, Bryant J. ;
Jansen, Andrew N. ;
Abraham, Daniel P. .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2017, 164 (01) :A6054-A6065
[8]   The Li-Ion Rechargeable Battery: A Perspective [J].
Goodenough, John B. ;
Park, Kyu-Sung .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (04) :1167-1176
[9]   X-ray photoelectron spectroscopy: Towards reliable binding energy referencing [J].
Greczynski, G. ;
Hultman, L. .
PROGRESS IN MATERIALS SCIENCE, 2020, 107
[10]   Implanting an electrolyte additive on a single crystal Ni-rich cathode surface for improved cycleability and safety [J].
Han, Yongkang ;
Xu, Jinmei ;
Wang, Wei ;
Long, Fu ;
Qu, Qunting ;
Wang, Yan ;
Zheng, Honghe .
JOURNAL OF MATERIALS CHEMISTRY A, 2020, 8 (46) :24579-24589