Ultrathin polymer electrolyte film prepared by in-situ polymerization for lithium metal batteries

2021 ◽  
pp. 100785
Author(s):  
M. Sun ◽  
Z. Zeng ◽  
L. Peng ◽  
Z. Han ◽  
C. Yu ◽  
...  
2021 ◽  
Author(s):  
Guoliang Bai ◽  
Na Liu ◽  
Chunhua Wang ◽  
Wei Wei ◽  
Xingjiang Liu ◽  
...  

A polymer electrolyte with high elasticity and high performance is prepared by in-situ polymerization. The polymer electrolyte is amorphous, and has high ionic conductivity (7.9×10-4 S cm-1) and good elasticity....


2021 ◽  
Vol 37 ◽  
pp. 215-223
Author(s):  
Zhaolin Lv ◽  
Qian Zhou ◽  
Shu Zhang ◽  
Shanmu Dong ◽  
Qinglei Wang ◽  
...  

2018 ◽  
Vol 10 ◽  
pp. 85-91 ◽  
Author(s):  
Hui Duan ◽  
Ya-Xia Yin ◽  
Xian-Xiang Zeng ◽  
Jin-Yi Li ◽  
Ji-Lei Shi ◽  
...  

Author(s):  
Yuhang Zhang ◽  
Shimou Chen ◽  
Yong Chen ◽  
Lingdong Li

The interface issues of electrodes/solid-state electrolytes have been limiting the application for room-temperature lithium metal batteries. In-situ polymerization technology achieved the establishment of solid-solid ultra-conformal interface contacts. However, few considerations...


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Dan Luo ◽  
Lei Zheng ◽  
Zhen Zhang ◽  
Matthew Li ◽  
Zhongwei Chen ◽  
...  

AbstractStable solid electrolyte interface (SEI) is highly sought after for lithium metal batteries (LMB) owing to its efficient electrolyte consumption suppression and Li dendrite growth inhibition. However, current design strategies can hardly endow a multifunctional SEI formation due to the non-uniform, low flexible film formation and limited capability to alter Li nucleation/growth orientation, which results in unconstrained dendrite growth and short cycling stability. Herein, we present a novel strategy to employ electrolyte additives containing catechol and acrylic groups to construct a stable multifunctional SEI by in-situ anionic polymerization. This self-smoothing and robust SEI offers multiple sites for Li adsorption and steric repulsion to constrain nucleation/growth process, leading to homogenized Li nanosphere formation. This isotropic nanosphere offers non-preferred Li growth orientation, rendering uniform Li deposition to achieve a dendrite-free anode. Attributed to these superiorities, a remarkable cycling performance can be obtained, i.e., high current density up to 10 mA cm−2, ultra-long cycle life over 8500 hrs operation, high cumulative capacity over 4.25 Ah cm−2 and stable cycling under 60 °C. A prolonged lifespan can also be achieved in Li-S and Li-LiFePO4 cells under lean electrolyte content, low N/P ratio or high temperature conditions. This facile strategy also promotes the practical application of LMB and enlightens the SEI design in related fields.


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