| Literature DB >> 33808797 |
Jian Hou1, In Kee Park1, Woo Ju Cha1, Chang Hyun Lee1.
Abstract
In this research, a series of innovative and stable cross-linked gel polymer reinforced membranes (GPRMs), were successfully prepared and investigated for application in lithium-ion batteries. Herein, a gel directly within the commercial polyethylene (PE) separator is supported via electron-beam simultaneous irradiation cross-linking of commercial liquid electrolyte and poly(ethylene glycol) methacrylate (PEGMA) oligomers. The physical and electrochemical properties of the GPRMs were characterized by SEM, TEM, mechanical durability, heating shrinkage, and ion conductivity, etc. The GPRMs demonstrated excellent mechanical durability and high ion conductivity compared with traditional PE membranes. Moreover, coin-typed cells were assembled and cycle performance was also studied compared with same-typed cells with commercial PE membrane and liquid electrolyte. As a result, the coin-typed cells using GPRMs also showed a relatively good efficiency on the 50th cycles at a high 1.0 C-rate. These GPRMs with excellent properties present a very promising material for utilization in high-performance lithium-ion batteries with improved safety and reliability.Entities:
Keywords: electron beam; gel polymer electrolyte; reinforced membrane; simultaneous irradiation
Year: 2021 PMID: 33808797 PMCID: PMC8003521 DOI: 10.3390/membranes11030219
Source DB: PubMed Journal: Membranes (Basel) ISSN: 2077-0375
Figure 1The schematic diagram of the gel polymer electrolyte reinforced membrane (GPERM) manufacturing process.
Figure 2Structure of the pressure-loaded blister test cell.
Figure 3SEM images of the commercial polyethylene (PE) separator and GPERMs.
Figure 4TEM images of the representative GPERM (PEGMA500_10).
Figure 5Thermal shrinkage rate of the commercial PE separator and GPERMs.
Figure 6Durability analysis result according to the physical acceleration.
Figure 7Digital camera images of the change in the state of the liquid electrolyte and GPERM.
Figure 8Lithium ion conductivity changes according to the different storage time.
Figure 9Cycle performance of the coin cells assemble by the commercial PE separator and GPERMs.