IP Library Granted Patent US 8,445,577
Granted Patent B2
US 8,445,577 · App. 13/189,800 · Granted May 21, 2013

Amphiphilic multi-arm copolymers and nanomaterials derived therefrom

Inventors: Zhiqun Lin (Ames, IA); Xinchang Pang (Ames, IA)
Assignee: Iowa State University Research Foundation, Inc.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,445,577
App. No.
13/189,800
Granted
May 21, 2013
Kind
B2
Abstract

The present invention relates to polymers, nanomaterials, and methods of making the same. Various embodiments provide an amphiphilic multi-arm copolymer. The copolymer includes a core unit and a plurality of amphiphilic block copolymer arms. Each block copolymer arm is substituted on the core unit. Each block copolymer arm includes at least one hydrophilic homopolymer subunit and at least one hydrophobic homopolymer subunit. In some examples, the copolymer can include a star-like or bottlebrush-like block copolymer, and can include a Janus copolymer. Various embodiments provide a nanomaterial. In some examples, the nanomaterial can include Janus nanomaterials, and can include nanoparticles, nanorods, or nanotubes. The nanomaterial includes the amphiphilic multi-arm copolymer and at least one inorganic precursor. The inorganic precursor can be coordinated to at least one homopolymer subunit of one of the amphiphilic block copolymer arms to form the nanomaterial. Various embodiments also provide methods of making the copolymer and the nanomaterial.

Claims (24)

1. A nanomaterial comprising:

an amphiphilic multi-arm copolymer, comprising

a core unit; and

a plurality of amphiphilic block copolymer arms, wherein each block copolymer arm is substituted on the core unit, wherein each block copolymer arm comprises at least one hydrophilic homopolymer subunit and at least one hydrophobic homopolymer subunit; and

at least one inorganic precursor, wherein the inorganic precursor is coordinated to at least one homopolymer subunit of one of the amphiphilic block copolymer arms.

2. The nanomaterial of claim 1 , wherein the inorganic precursor is coordinated to at least one homopolymer subunit of each of more than one of the amphiphilic block copolymer arms.

3. The nanomaterial of claim 1 , wherein the amphiphilic block copolymer includes at least one amphiphilic block copolymer arm having at least one PAA or P4VP homopolymer subunit, wherein the inorganic precursor is coordinated to at least one of the PAA or P4VP homopolymer subunits.

4. The nanomaterial of claim 1 , wherein the inorganic precursor is selected from the group consisting of: Au or ions thereof, Ag or ions thereof, PbTiO 3 , BaTiO 3 , BaSe 3 , NaYF 4 :Tm, Fe 3 O 4 and γ-Fe 2 O 3 , CdSe, TiO 2 , ZnO, Cu 2 O, and SnO 2 .

5. The nanomaterial of claim 1 , wherein the nanomaterial comprises: a nanoparticle, a hollow nanoparticle, a core/shell nanoparticle, a nanotube, or a nanorod.

6. A nano material, comprising a nanomaterial derived from the nanomaterial of claim 1 .

7. A method of making a nanomaterial, comprising:

contacting an amphiphilic multi-arm copolymer with an inorganic precursor, to form a nanomaterial that comprises the amphiphilic multi-arm copolymer coordinated to the inorganic precursor, the amphiphilic multi-arm copolymer comprising

a core unit; and

a plurality of amphiphilic block copolymer arms, wherein each block copolymer arm is substituted on the core unit, wherein each block copolymer arm comprises at least one hydrophilic homopolymer subunit and at least one hydrophobic homopolymer subunit.

8. The nanomaterial of claim 1 , wherein the core unit comprises at least one beta-cyclodextrin unit.

9. The nanomaterial of claim 8 , wherein the amphiphilic block copolymer arms are substituted onto the beta-cyclodextrin unit via oxygen atoms that comprise hydroxyl groups in an unsubstituted beta-cyclodextrin molecule.

10. The nanomaterial of claim 8 , wherein the substitution of the amphiphilic block copolymer arms onto the beta-cyclodextrin unit comprises:

wherein CD—O represents the substituted beta-cyclodextrin unit, O represents an oxygen atom that comprises a hydroxyl group in an unsubstituted beta-cyclodextrin molecule, and ABC represents the at least one hydrophilic homopolymer and the at least one hydrophobic homopolymer of the copolymer arm.

11. The nanomaterial of claim 1 , wherein the hydrophobic homopolymer subunit is selected from the group consisting of: poly(alkenylaryl) units, poly(alkenylheteroaryl) units, and poly(lactam) units.

12. The nanomaterial of claim 1 , wherein the hydrophobic homopolymer subunit is selected from the group consisting of: polystyrene (PS) units, poly(4-vinylpyridine) (P4VP) units, and polycaprolactam (PCL) units.

13. The nanomaterial of claim 1 , wherein the hydrophilic homopolymer subunit is selected from the group consisting of: poly(alkyl alkenoate) units, poly(alkenoic acid) units, and poly(alkylene oxide) units.

14. The nanomaterial of claim 1 , wherein the hydrophilic homopolymer subunit is selected from the group consisting of: poly(t-butyl acrylate) (PtBA) units, poly(acrylic acid) (PAA) units, and poly(ethylene oxide) (PEO) units.

15. The nanomaterial of claim 1 , wherein the amphiphilic block copolymer arms comprise a 2,2-dimethylacetyl group substituted at the 2-position by a block copolymer selected from the group consisting of: poly(alkyl alkenoate)-b-poly(alkenylaryl), poly(alkyl alkenoate)-b-poly(alkenylheteroaryl), poly(alkyl alkenoate)-b-poly(lactam), poly(alkenoic acid)-b-poly(alkenylaryl), poly(alkenoic acid)-b-poly(alkenylheteroaryl), poly(alkenoic acid)-b-poly(lactam), poly(alkylene oxide)-b-poly(alkenylaryl), poly(alkylene oxide)-b-poly(alkenylheteroaryl), poly(alkylene oxide)-b-poly(lactam), poly(alkenylaryl)-b-poly(alkyl alkenoate), poly(alkenylaryl)-b-poly(alkenoic acid), poly(alkenylaryl)-b-poly(alkylene oxide), poly(alkenylheteroaryl)-b-poly(alkyl alkenoate), poly(alkenylheteroaryl)-b-poly(alkenoic acid), poly(alkenylheteroaryl)-b-poly(alkylene oxide), poly(lactam)-b-poly(alkyl alkenoate), poly(lactam)-b-poly(alkenoic acid), and poly(lactam)-b-poly(alkylene oxide).

16. The amphiphilic multi-arm copolymer of claim 1 , wherein the amphiphilic block copolymer arms comprise a 2,2-dimethylacetyl group substituted at the 2-position by a block copolymer selected from the group consisting of: PtBA-b-PS, PtBA-b-P4VP, PtBA-b-PCL, PAA-b-PS, PAA-b-P4VP, PAA-b-PCL, PEO-b-PS, PEO-b-P4VP, PEO-b-PCL, PS-b-PtBA, PS-b-PAA, PS-b-PEO, P4VP-b-PtBA, P4VP-b-PAA, P4VP-b-PEO, PCL-b-PtBA, PCL-b-PAA, and PCL-b-PEO.

Assignments (2)
CONFIRMATORY LICENSE Recorded Nov 30, 2011
From: IOWA STATE UNIVERSITY OF SCIENCE & TECH
To: AIR FORCE, UNITED STATES
Reel/Frame 027450/0258 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 23, 2011
From: LIN, ZHIQUN; PANG, XINCHANG
To: IOWA STATE UNIVERSITY RESEARCH FOUNDATION, INC.
Reel/Frame 026796/0352 →
Continuity (1)
Related Publication 20130030120A1 · Jan 31, 2013