Crosslinked ion-exchange materials, related methods, and related articles
US-2024050906-A1 · Feb 15, 2024 · US
US9289728B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9289728-B2 |
| Application number | US-201013260643-A |
| Country | US |
| Kind code | B2 |
| Filing date | Mar 5, 2010 |
| Priority date | Mar 30, 2009 |
| Publication date | Mar 22, 2016 |
| Grant date | Mar 22, 2016 |
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The invention relates to microporous membranes comprising polymer and having well-balanced permeability, shutdown temperature, and pin puncture strength. The invention also relates to methods for making such membranes, and the use of such membranes as battery separator film in, e.g., lithium ion secondary batteries. The membrane has a shutdown temperature <130.5° C.
Opening claim text (preview).
What is claimed is: 1. A microporous membrane comprising a first polyethylene in an amount of 1.0 wt. % to 20.0 wt. %, having a T 80 ≦130.0° C., a T 25 ≧100.0° C., a T 80 −T 25 ≦25.0° C., and an Mw of 1.0×10 4 to 4.0×10 5 , the wt. % being based on the weight of the membrane, a second polyethylene having an Mw>1.0×10 6 , and a third polyethylene having an Mw≦1.0×10 6 and a T 80 >132.0° C., wherein the microporous membrane is a monolayer membrane that is an extrudate comprising the first polyethylene and has a shutdown temperature in the range of 120° C. to 130° C. 2. The microporous membrane of claim 1 , wherein the first polyethylene has a T m in the range of from 120.0° C. to 126.0° C. 3. The microporous membrane of claim 1 , wherein the microporous membrane has a normalized air permeability ≦6.0×10 2 seconds/100 cm 3 /20 μm, a normalized pin puncture strength ≧1.5×10 3 gf/20 μm, and a 105° C. heat shrinkage in TD in the range of ≦10.0%. 4. The microporous membrane of claim 1 , wherein the microporous membrane has a shutdown temperature in the range of 124.0° C. to 129.0° C. 5. The microporous membrane of claim 1 , wherein the first polyethylene has an Mw≧1.0×10 5 , a T 80 −T 25 ≦15° C., and wherein the first polyethylene is present in the membrane in an amount in the range of from 10 wt. % to 30 wt. %, based on the weight of the membrane. 6. A battery separator comprising the microporous membrane of claim 1 .
Tensile strength · CPC title
Polyolefins · CPC title
Porosity · CPC title
Separators, membranes, diaphragms or spacing elements inside the cells, characterised by their physical properties, e.g. swelling degree, hydrophilicity or shut down properties · CPC title
comprising polyolefins {(comprising vinyl (co)polymers or acrylic (co)polymers B32B27/30)} · CPC title
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