IP Library Granted Patent US 8,911,540
Granted Patent B2
US 8,911,540 · App. 13/875,113 · Granted Dec 16, 2014

Gas separation membrane

Inventors: Eric Baer (Cleveland Heights, OH); Shannon Armstrong (Cleveland Heights, OH); Benny D. Freeman (Cleveland, OH); Donald R. Paul (Cleveland, OH); Grant Offord (Austin, TX)
Assignee: Case Western Reserve University
B01D53/228B01D71/80B01D71/56B01D71/44B01D69/02B01D69/148B01D2325/20B01D71/02B01D71/26B01D67/0027B01D69/12B01D71/48B01D2325/04
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Quick Facts
Patent No.
US 8,911,540
App. No.
13/875,113
Granted
Dec 16, 2014
Kind
B2
Abstract

A method of fabricating a gas separation membrane includes providing a coextruded multilayer film that includes a first polymer layer formed of a first polymer material and a second polymer layer formed of a second polymer material, the first polymer material having a first gas permeability. The coextruded multilayer film is axially oriented such that the second polymer layer has a second gas permeability that is greater than the first gas permeability.

Claims (25)

1. A gas separation membrane comprising:

an axially oriented, coextruded multilayer film that has a CO 2 /O 2 selectivity of at least about 4 and a flux of at least about 20 GPU, the axially oriented, coextruded multilayer film including at least one axially oriented, coextruded first polymer layer of a first polymer material and at least one axially oriented, coextruded second polymer layer of a second polymer material, the at least one axially oriented, coextruded first polymer layer having a first permeability (P 1 ) prior to axial orientation and a second permeability (P 2 ) after axially orientation less than or equal to the first permeability (P 1 ), the at least one axially oriented, coextruded second polymer layer having a first permeability (P 1a ) prior to axial orientation and a second permeability (P 2a ) after axial orientation that is substantially greater than the first permeability (P 1a ) and the second permeability (P 2 ).

2. The gas separation membrane of claim 1 , wherein the axially oriented, coextruded first polymer layer has a first thickness, and combined thicknesses of all the axially oriented, coextruded first polymer layers of the axially oriented, coextruded multilayer film being less than about 1 μm.

3. The gas separation membrane of claim 1 , wherein the axially oriented, coextruded first polymer layers having a CO 2 /O 2 selectivity of at least about 4.

4. The gas separation membrane of claim 1 , the axially oriented, coextruded multilayer film having a flux of at least about 30 GPU.

5. The gas separation membrane of claim 1 , wherein the first polymer material comprises a poly(ether block amide).

6. The gas separation membrane of claim 5 , wherein the first polymer material comprises poly(ether block amide) that includes from about 15% to about 80% of a polyether by molecular weight.

7. The gas separation membrane of claim 1 , wherein the second material comprises polypropylene.

8. The gas separation membrane of claim 7 , wherein the second polymer material further comprises CaCO 3 or a beta-nucleation agent.

9. The gas separation membrane of claim 1 , wherein the axially oriented, coextruded multilayer film comprises a plurality of axially oriented, coextruded alternating first polymer layers and second polymer layers.

10. A method of fabricating a gas separation membrane comprising:

coextruding a first polymer material and a second polymer material to form a multilayer film that includes at least one coextruded first polymer layer and at least one coextruded second polymer layer, the at least one first polymer layer having a first permeability (P 1 ) and a CO 2 /O 2 selectivity of at least about 4; and

axially orienting the coextruded multilayer film, the at least one axially oriented, coextruded first polymer layer having a second permeability (P 2 ) after axial orientation less than or equal to the first permeability (P 1 ), the at least one axially oriented, coextruded second polymer layer having a first permeability (P 1a ) prior to axial orientation and a second permeability (P 2a ) after axial orientation that is substantially greater than first permeability (P 1a ) and the second permeability (P 2 ), wherein the axially oriented, coextruded multilayer film has a CO 2 /O 2 selectivity of at least about 4 and a flux of at least about 20 GPU.

11. The method of claim 10 , wherein the multilayer film is axially oriented at a temperature below the melting temperature (T m ) of the second polymer material.

12. The method of claim 10 , wherein the multilayer film is uniaxially stretched.

13. The method of claim 10 , wherein the axially oriented, coextruded first polymer layer has a first thickness, and combined thicknesses of all the axially oriented, coextruded first polymer layers of the axially oriented, coextruded multilayer film being less than about 1 μm.

14. The method of claim 10 , wherein the first polymer material comprises a poly(ether block amide).

15. The method of claim 14 , wherein the first polymer material comprises poly(ether block amide) that includes from about 15% to about 80% of a polyether by volume.

16. The method of claim 10 , wherein the second polymer material comprises polypropylene.

17. The method of claim 10 , wherein the second polymer material further comprises CaCO 3 or a beta-nucleation agent.

18. The method of claim 10 , wherein the axially oriented, coextruded multilayer film comprises a plurality of axially oriented, coextruded alternating first polymer layers and second polymer layers.

19. The method of claim 10 , wherein the multilayer film is formed in a solventless process.

20. The method of claim 10 , wherein the multilayer film is axially stretched from about 100% to about 400%.

21. The method of claim 10 , further comprising heat treating the multilayer film at a temperature and for a time to increase the gas permeability of the at least one axially oriented, coextruded first polymer layer.

22. The method of claim 21 , wherein axially orienting the at least one first polymer layer causes strain-induced crystallization in the at least one first polymer layer and the heat treating at least partially reversing crystallization in the at least one first polymer layer to increase the gas permeability of the at least one first polymer layer.

Assignments (3)
CONFIRMATORY LICENSE Recorded Aug 8, 2014
From: CASE WESTERN RESERVE UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 033501/0428 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 23, 2013
From: BAER, ERIC; ARMSTRONG, SHANNON
To: CASE WESTERN RESERVE UNIVERSITY
Reel/Frame 031460/0600 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 23, 2013
From: OFFORD, GRANT; PAUL, DONALD R.; FREEMAN, BENNY D.
To: THE UNIVERSITY OF TEXAS AT AUSTIN
Reel/Frame 031460/0703 →
Continuity (2)
Provisional Application 61640758 · May 1, 2012
Related Publication 20130291729A1 · Nov 7, 2013