Multi-scale stabilization of high-voltage LiCoO2 enabled by nanoscale solid electrolyte coating

被引:60
作者
Li, Zeyuan [1 ]
Li, Aijun [1 ,2 ]
Zhang, Hanrui [1 ]
Ning, Fanghua [3 ]
Li, Wenxi [1 ]
Zangiabadi, Amirali [1 ]
Cheng, Qian [1 ]
Borovilas, James Joseph [1 ]
Chen, Yijun [1 ]
Zhang, Haijun [4 ]
Xiao, Xianghui [5 ]
Ouyang, Chuying [6 ]
Huang, Xiaojing [5 ]
Lee, Wah-Keat [5 ]
Ge, Mingyuan [5 ]
Chu, Yong S. [5 ]
Chuan, Xiuyun [2 ]
Yang, Yuan [1 ]
机构
[1] Columbia Univ, Dept Appl Phys & Appl Math, Program Mat Sci & Engn, New York, NY 10027 USA
[2] Peking Univ, Sch Earth & Space Sci, Key Lab Orogen Belts & Crustal Evolut, Beijing 100871, Peoples R China
[3] Peking Univ, Coll Engn, Dept Energy & Resources Engn, Beijing 100871, Peoples R China
[4] Univ Sci & Technol Beijing, Beijing Innovat Ctr Mat Genome Engn, Beijing 10083, Peoples R China
[5] Brookhaven Natl Lab, Upton, NY 11973 USA
[6] Jiangxi Normal Univ, Dept Phys, Nanchang 330022, Jiangxi, Peoples R China
基金
中国国家自然科学基金;
关键词
Lithium battery; High voltage; Energy density; LiCoO2; Li1.5Al0.5Ge1.5(PO4)(3) nanoparticles; CATHODE MATERIALS; ELECTROCHEMICAL PROPERTIES; ION BATTERIES; HIGH-ENERGY; LITHIUM; PERFORMANCE; INTERFACE;
D O I
10.1016/j.ensm.2020.03.031
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
LiCoO2 (LCO) possess a high theoretical specific capacity of 274 mAh g(-1), and currently LCO charged to 4.48 V with a capacity of similar to 190-195 mAh g(-1) is penetrating the commercial markets. Scalable strategies to further enhance the performance of LCO are highly attractive. Here, we develop a scalable ball-milling and sintering method to tackle this long-standing challenge by modifying LCO surface with only 1.5-3.5% ceramic solid electrolyte nanoparticles, specifically Li1.5Al0.5Ge1.5(PO4)(3) (LAGP) as an example. Consequently, the atomic-tomeso multiscale structural stabilities have been significantly improved, even with a high cut-off voltage of 4.5 V vs. Li/Li thorn, leading to excellent electrochemical stabilities. The nano-LAGP modified Li|LCO cell exhibits high discharge capacity of 196 mAh g(-1) at 0.1 degrees C, capacity retention of 88% over 400 cycles, and remarkably enhanced rate capability (163 mAh g(-1) at 6 degrees C). These results show significant improvement compared to the Li vertical bar LCO cells. The as-prepared graphite vertical bar LAGP-LCO full cells also show steady cycling with 80.4% capacity retention after 200 cycles with a voltage cut-off of 4.45 V. This work provides a simple and scalable approach to achieve stable cycling of LCO at high voltage with high energy density.
引用
收藏
页码:71 / 77
页数:7
相关论文
共 43 条
[1]   Status and challenges in enabling the lithium metal electrode for high-energy and low-cost rechargeable batteries [J].
Albertus, Paul ;
Babinec, Susan ;
Litzelman, Scott ;
Newman, Aron .
NATURE ENERGY, 2018, 3 (01) :16-21
[2]   Lithium-Metal Foil Surface Modification: An Effective Method to Improve the Cycling Performance of Lithium-Metal Batteries [J].
Becking, Jens ;
Groebmeyer, Albert ;
Kolek, Martin ;
Rodehorst, Uta ;
Schulze, Susanne ;
Winter, Martin ;
Bieker, Peter ;
Stan, Marian Cristian .
ADVANCED MATERIALS INTERFACES, 2017, 4 (16)
[3]   Identification of cathode materials for lithium batteries guided by first-principles calculations [J].
Ceder, G ;
Chiang, YM ;
Sadoway, DR ;
Aydinol, MK ;
Jang, YI ;
Huang, B .
NATURE, 1998, 392 (6677) :694-696
[4]  
Chagnes A., 2015, LITHIUM PROCESS CHEM, V1st
[5]   Comparison of the chemical stability of the high energy density cathodes of lithium-ion batteries [J].
Chebiam, RV ;
Kannan, AM ;
Prado, F ;
Manthiram, A .
ELECTROCHEMISTRY COMMUNICATIONS, 2001, 3 (11) :624-627
[6]   Advanced High Energy Density Secondary Batteries with Multi-Electron Reaction Materials [J].
Chen, Renjie ;
Luo, Rui ;
Huang, Yongxin ;
Wu, Feng ;
Li, Li .
ADVANCED SCIENCE, 2016, 3 (10)
[7]   Improving the capacity retention of LiCoO2 cycled to 4.5 V by heat-treatment [J].
Chen, ZH ;
Dahn, JR .
ELECTROCHEMICAL AND SOLID STATE LETTERS, 2004, 7 (01) :A11-A14
[8]   Stabilizing Solid Electrolyte-Anode Interface in Li-Metal Batteries by Boron Nitride-Based Nanocomposite Coating [J].
Cheng, Qian ;
Li, Aijun ;
Li, Na ;
Li, Shuang ;
Zangiabadi, Amirali ;
Li, Tai-De ;
Huang, Wenlong ;
Li, Alex Ceng ;
Jin, Tianwei ;
Song, Qingquan ;
Xu, Weiheng ;
Ni, Nan ;
Zhai, Haowei ;
Dontigny, Martin ;
Zaghib, Karim ;
Chuan, Xiuyun ;
Su, Dong ;
Yan, Kai ;
Yang, Yuan .
JOULE, 2019, 3 (06) :1510-1522
[9]   A Review of Solid Electrolyte Interphases on Lithium Metal Anode [J].
Cheng, Xin-Bing ;
Zhang, Rui ;
Zhao, Chen-Zi ;
Wei, Fei ;
Zhang, Ji-Guang ;
Zhang, Qiang .
ADVANCED SCIENCE, 2016, 3 (03)
[10]   Li-ion batteries: basics, progress, and challenges [J].
Deng, Da .
ENERGY SCIENCE & ENGINEERING, 2015, 3 (05) :385-418