A practical Li-ion full cell with a Li-ion conductor coating cathode and graphite anode: strong interface stability and superior electrochemical performance

Author(s):  
Wenchao Qin ◽  
Liwei Feng ◽  
Zihao Yang ◽  
Jinfeng Liu ◽  
Yan Liu
2017 ◽  
Vol 41 (20) ◽  
pp. 11759-11765 ◽  
Author(s):  
Shu Huang ◽  
Jianguo Ren ◽  
Rong Liu ◽  
Min Yue ◽  
Youyuan Huang ◽  
...  

A crosslinked ionomer binder was prepared and used in graphite anodes for Li-ion batteries. These binder-based anodes exhibit enhanced electrochemical performance due to the formation of hydrogen bonds and the release of conductive Li+.


Author(s):  
Xiaopeng Qi ◽  
Bingxue Liu ◽  
Fengling Yun ◽  
Changhong Wang ◽  
Rennian Wang ◽  
...  

The electrochemical performance, reliability, and safety of Li-ion cells depend on thermal management. However, the heat generation mechanisms and release characteristics of large-format high-energy-density (HED) Li-ion cells, a prerequisite for...


RSC Advances ◽  
2016 ◽  
Vol 6 (68) ◽  
pp. 63749-63753 ◽  
Author(s):  
Ting Wang ◽  
Ze Yang ◽  
Yan Jiang ◽  
Guolong Li ◽  
Yunhui Huang

Electrochemical performances of Li-rich layered Li1.2Ni0.13Co0.13Mn0.54O2 cathode are improved by modification of Li-ion conductor Li1.3Al0.3Ti1.7(PO4)3.


2015 ◽  
Vol 121 (1) ◽  
pp. 123-129 ◽  
Author(s):  
Min-Jen Deng ◽  
Du-Cheng Tsai ◽  
Chia-Ling Lu ◽  
Ching-Fei Li ◽  
Fuh-Sheng Shieu

2021 ◽  
Vol 9 (16) ◽  
pp. 10345-10353
Author(s):  
Jie Xu ◽  
Dongmei Zhang ◽  
Zongping Zhang ◽  
Shibing Ni

An all-vanadate-based Li-ion full cell with high energy density and long lifespan is constructed for the first time based on the design of Li3VO4/N doped C porous microspheres with excellent electrochemical performance.


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Sang-Min Lee ◽  
Junyoung Kim ◽  
Janghyuk Moon ◽  
Kyu-Nam Jung ◽  
Jong Hwa Kim ◽  
...  

AbstractThe realisation of fast-charging lithium-ion batteries with long cycle lifetimes is hindered by the uncontrollable plating of metallic Li on the graphite anode during high-rate charging. Here we report that surface engineering of graphite with a cooperative biphasic MoOx–MoPx promoter improves the charging rate and suppresses Li plating without compromising energy density. We design and synthesise MoOx–MoPx/graphite via controllable and scalable surface engineering, i.e., the deposition of a MoOx nanolayer on the graphite surface, followed by vapour-induced partial phase transformation of MoOx to MoPx. A variety of analytical studies combined with thermodynamic calculations demonstrate that MoOx effectively mitigates the formation of resistive films on the graphite surface, while MoPx hosts Li+ at relatively high potentials via a fast intercalation reaction and plays a dominant role in lowering the Li+ adsorption energy. The MoOx–MoPx/graphite anode exhibits a fast-charging capability (<10 min charging for 80% of the capacity) and stable cycling performance without any signs of Li plating over 300 cycles when coupled with a LiNi0.6Co0.2Mn0.2O2 cathode. Thus, the developed approach paves the way to the design of advanced anode materials for fast-charging Li-ion batteries.


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