IP Library Granted Patent US 9,468,923
Granted Patent B2
US 9,468,923 · App. 14/643,086 · Granted Oct 18, 2016

Porous polymer networks and ion-exchange media and metal-polymer composites made therefrom

Inventors: Mercouri G. Kanatzidis (Wilmette, IL); Alexandros Katsoulidis (Evanston, IL)
Assignee: Northwestern University
B01J39/185B01D15/08B01D15/362B01D53/02B01J20/262B01J20/267B01J20/28057B01J20/28085B01J39/165B01J41/125B01D53/04B01D2253/1122B01D2253/202B01D2253/25B01D2253/304B01D2253/306B01D2257/202B01D2257/60B01D2257/602Y10T428/2982
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Quick Facts
Patent No.
US 9,468,923
App. No.
14/643,086
Granted
Oct 18, 2016
Kind
B2
Abstract

Porous polymeric networks and composite materials comprising metal nanoparticles distributed in the polymeric networks are provided. Also provided are methods for using the polymeric networks and the composite materials in liquid- and vapor-phase waste remediation applications. The porous polymeric networks, are highly porous, three-dimensional structures characterized by high surface areas. The polymeric networks comprise polymers polymerized from aldehydes and phenolic molecules.

Claims (17)

1. A composite material comprising:

(a) a porous, three-dimensional, aromatic polymeric network comprising an organic polymer comprising phenolic groups, wherein the phenolic groups are crosslinked through linkages comprising one or more non-phenolic aromatic rings; and

(b) metal nanoparticles distributed within the polymeric network.

2. The material of claim 1 , wherein the phenolic groups comprise hydroxynaphthalene groups.

3. The material of claim 1 , wherein the phenolic groups comprise phloroglucinol groups.

4. The material of claim 1 , wherein the metal nanoparticles comprise silver nanoparticles.

5. The material of claim 1 , wherein the metal nanoparticles comprise lead nanoparticles.

6. The material of claim 1 , wherein the metal nanoparticles comprise gold nanoparticles.

7. The material of claim 1 , wherein the metal nanoparticles comprise tin, bismuth or antimony nanoparticles.

8. The material of claim 1 , wherein the polymeric network has a specific surface area of at least 500 m 2 /g, as measured by BET.

9. The material of claim 1 , wherein the polymeric network has stable unpaired electrons and exhibits a strong EPR signal at g≈2.006.

10. The material of claim 1 having a metal nanoparticle loading of at least 20 percent by weight, based on the total weight of the organic polymer and the metal nanoparticles.

11. The material of claim 1 , wherein the phenolic groups comprise two or more aromatic rings.

12. The material of claim 11 , wherein the two or more aromatic rings are fused.

13. The material of claim 1 , wherein an aromatic ring of the phenolic group is functionalized with an —SH or an —NH 2 group.

14. The material of claim 1 , wherein the linkages comprise two or more non-phenolic aromatic rings.

15. The material of claim 1 having a hydroxyl functionality density in the range from 1 to 2 —OH groups per phenyl ring.

Assignments (2)
CONFIRMATORY LICENSE Recorded May 24, 2022
From: NORTHWESTERN UNIVERSITY
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 060173/0499 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 17, 2015
From: KANATZIDIS, MERCOURI G.; KATSOULIDIS, ALEXANDROS
To: NORTHWESTERN UNIVERSITY
Reel/Frame 035434/0841 →
Continuity (3)
Division 13888705 · May 7, 2013
Provisional Application 61643525 · May 7, 2012
Related Publication 20150190799A1 · Jul 9, 2015