Separators for electrochemical cells
a technology of electrochemical cells and separators, applied in the field of porous membranes, can solve the problems of long time for filling the battery with electrolyte, poor wet separator materials, and low separation efficiency, and achieve the effect of increasing the safety of the separator
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example 1
[0034]A 20% by weight dispersion of DISPAL 10SR, the trade name for a surface-modified aluminum oxide available from SASOL North America, Houston, Tex., in methyl ethyl ketone was prepared. According to the Material Safety Data Sheet (MSDS) by SASOL for DISPAL 10SR, the aluminum oxide is an aluminum boehmite, and the surface modification comprises p-toluenesulfonic acid (PTSA). Separately, a 10% by weight solution of KYNAR HSV 900 in N-methyl pyrrolidone (NMP) was prepared. The aluminum oxide dispersion was added to the stirred fluoropolymer solution to prepare a dispersion containing the aluminum oxide and fluoropolymer in a dry weight ratio of 5:1. The % solids of this dispersion was about 17%.
[0035]This dispersion was coated onto a 3 mil thick silicone treated polyester (PET) film on the silicone release side to give a dry coating thickness of about 20 microns and then delaminated from the release substrate to provide a free standing aluminum oxide microporous separator with a po...
example 2
[0037]The aluminum oxide and fluoropolymer dispersion of Example 1 was coated onto a 20 micron thick polyolefin separator from Ube and dried at 90° C. to avoid shrinkage and melting of the polyolefin separator. The thickness of the coating was varied from 1 to 4 microns dry and coated on one or both sides of the polyolefin separator. Button cells as described in Example 1 were prepared with a 2 micron thick aluminum oxide microporous coating on one or both sides of the polyolefin separator and gave comparable stability at 55° C., cycling, and conductivity to control button cells with the polyolefin separator only.
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