Modifying Li@Mn 6 Superstructure Units by Al Substitution to Enhance the Long‐Cycle Performance of Co‐Free Li‐Rich Cathode

2021 ◽  
pp. 2101962
Author(s):  
Zhibo Li ◽  
Yiwei Li ◽  
Mingjian Zhang ◽  
Zu‐Wei Yin ◽  
Liang Yin ◽  
...  
2016 ◽  
Vol 4 (4) ◽  
pp. 285-297
Author(s):  
Zi Wei ◽  
N.A. Siddique ◽  
Dong Liu ◽  
Shambhavi Sakri ◽  
Fuqiang Liu

2020 ◽  
Vol 104 (3) ◽  
pp. 1526-1538
Author(s):  
Lijuan Hou ◽  
Tingting Xu ◽  
Ruichao Liu ◽  
Huiyu Yuan ◽  
Dezhi Kong ◽  
...  

2020 ◽  
Vol 2020 ◽  
pp. 1-9
Author(s):  
Yuduo Ren ◽  
Shiting Zhang

Nano-TiC and nano-WC anodes for Li-ion battery were manufactured by high-energy ball milling. Pure titanium powder and toluene are mixed with a high-energy ball mill to prepare TiC powder. The powder is calcined at 750°C/1 h and secondary ball milled to make a negative electrode for lithium-ion battery. The phase composition and micromorphology of TiC powder are analyzed and observed, and the charge-discharge cycle performance of TiC anode material is tested. The results show that there are TiH2 and WC impurities in the product after primary ball milling. After calcination and secondary ball milling, TiH2 impurities are removed and the TiC grain size is refined, and TiC powder is obtained with a grain size of 12.5 nm. The specific discharge capacity of the TiC anode is stable during the long cycle discharge. When the current density is 1 A/g, the specific discharge capacity can still be maintained at 110 mAh/g after 3000 cycles. The results show that TiC anode materials have excellent long-cycle performance and could be used as the frame material of Si anode materials. Nano-WC powders are prepared by a ball milling method to investigate the effect of WC impurities on the performance of TiC lithium batteries. The charge and discharge capacity at 0.5 A/g current density is similar to that of TiC anode. After 2000 cycles, the discharge-specific capacity is about 100 mA/g, which is slightly lower than TiC, and the final capacity is maintained at 230 mA/g, but its low discharge capacity affects the performance of the TiC battery after a long ball milling. The results show that the performance of the TiC anode after the first 50 h of ball milling is poor. The main reason is the agglomeration of TiC nanoparticles.


2020 ◽  
Vol 213 ◽  
pp. 01011
Author(s):  
Guo-Jiang Zhou ◽  
Tao Yu ◽  
Yang Zhou ◽  
Li-Guo Wei

As a promising cathode material for lithium ion battemensionalry of high voltage, spinel LiNi0.5Mn1.5O4 has attracted interest due to its high discharging voltage at 4.7 V and high energy density of 610 Wh kg-1. In this work, LiNi0.5Mn1.5O4 with a new core-multilayer shells structure (LNMO-900) is synthesized successfully by co-precipitation method and shows a better electrochemical performance. The formation of the core-multilayer shells structure is related to the kirkendall effect, the shell maintains structural stability, and improves long cycle performance. Core-multilayer shells structure is also beneficial for transmission of lithium ion, increasing rate performance. The effects of sintering temperature on the performance of LNMO were further investigated. Core-multilayer shells LiNi0.5Mn1.5O4 is synthesized successfully at 900 °C for 12 h uniquely. From the integral calculation of XPS spectra, a higher content of Mn4+ is observed in the outer shell of LNMO-900 compared with other homogeneous solid particles. The discharge specific capacity of LNMO-900 is 129.3 mAh g-1 at 1 C which is superior to others, and after 1000 cycles, LNMO-900 shows capacity retention of 87.9%. The initial capacity of LNMO-900 is 104.9 mAh g-1 at 5 C.


RSC Advances ◽  
2015 ◽  
Vol 5 (99) ◽  
pp. 81461-81467 ◽  
Author(s):  
Zhijian Zhang ◽  
Guorong Hu ◽  
Yanbing Cao ◽  
Jianguo Duan ◽  
Ke Du ◽  
...  

The hierarchical LiMnPO4/C with (010) exposed was prepared to provide superior Li+ migration and electron transfer via urea assisted solvothermal method. The as-prepared material showed excellent high rate and long cycle performance.


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