IP Library Granted Patent US 10,137,503
Granted Patent B2
US 10,137,503 · App. 14/298,594 · Granted Nov 27, 2018

Method and apparatus for production of uniformly sized nanoparticles

Inventor: William Niedermeyer (West Jordan, UT)
Assignee: ATTOSTAT, INC.
B22F9/04B01J13/0043B82Y40/00B22F1/0018B22F3/003B22F2009/045B22F2999/00Y10T428/2982
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Quick Facts
Patent No.
US 10,137,503
App. No.
14/298,594
Granted
Nov 27, 2018
Kind
B2
Abstract

An apparatus and process for creating uniformly sized, spherical nanoparticles from a solid target. The solid target surface is ablated to create an ejecta event containing nanoparticles moving away from the surface. Ablation may be caused by laser or electrostatic discharge. At least one electromagnetic field is placed in front of the solid target surface being ablated. The electromagnetic field manipulates at least a portion of the nanoparticles as they move away from the target surface through the electromagnetic field to increase size and spherical shape uniformity of the nanoparticles. The manipulated nanoparticles are collected.

Claims (29)

1. A stable nanoparticle composition comprising:

a polar liquid selected from the group consisting of deionized water, alcohol, and a solution thereof; and

metal nanoparticles that are nonionic and have a mean diameter less than 35 nm and a ξ potential greater than ±20 mV so as to remain dispersed in the polar liquid without a surfactant, wherein at least 99% of the metal nanoparticles have diameters within ±3 nm of the mean diameter,

wherein the metal nanoparticles are selected from the group consisting of silver, gold, copper, platinum, and an alloy of silver and gold,

wherein the nanoparticle composition is substantially free of metal ions from the metal nanoparticles.

2. A stable nanoparticle composition as in claim 1 , wherein the polar liquid consists of deionized water or alcohol.

3. A stable nanoparticle composition as in claim 1 , wherein the polar liquid consists of distilled deionized water that is substantially free of particles other than the metal nanoparticles.

4. A stable nanoparticle composition as in claim 1 , wherein the metal nanoparticles consist of gold, silver or an alloy of gold and silver.

5. A stable nanoparticle composition as in claim 1 , wherein the metal nanoparticles consist of silver.

6. A stable nanoparticle composition as in claim 1 , wherein the metal nanoparticles have a diameter of 10 nm or less.

7. A stable nanoparticle composition as in claim 1 , wherein the metal nanoparticles have a diameter of 5 nm or less.

8. A stable nanoparticle composition as in claim 1 , wherein the metal nanoparticles are substantially spherical.

9. A stable nanoparticle composition as in claim 1 , wherein the metal nanoparticles have a ξ potential greater than ±30 mV.

10. A stable nanoparticle composition as in claim 1 , at least 99% of the metal nanoparticles have diameters within ±1 nm of the mean diameter.

11. A nanoparticle composition comprising:

a polar liquid selected from the group consisting of deionized water, alcohol, and a solution thereof; and

substantially spherical metal nanoparticles that are nonionic and have a mean diameter less than 35 nm and a ξ potential greater than ±30 mV so as to remain dispersed in the polar liquid without a surfactant, wherein at least 99% of the metal nanoparticles have diameters within ±3 nm of the mean diameter,

wherein the metal nanoparticles are selected from the group consisting of silver, gold, and an alloy of silver and gold,

wherein the nanoparticle composition is substantially free of metal ions from the metal nanoparticles.

12. A nanoparticle composition as in claim 11 , wherein at least 99% of the metal nanoparticles have diameters within ±1 nm of the mean diameter.

13. A nanoparticle composition as in claim 12 , wherein the metal nanoparticles have a diameter of 10 nm or less.

14. A nanoparticle composition as in claim 11 , wherein the polar liquid is a polar solution that consists of deionized water.

15. A nanoparticle composition comprising:

a polar liquid solution comprising deionized water; and

substantially spherical metal nanoparticles of substantially uniform size, wherein the metal nanoparticles consist of silver metal, gold metal, or an alloy of silver and gold metal and have a mean diameter less than 35 nm and a ξ potential greater than ±20 mV so as to remain dispersed in the polar liquid solution without a surfactant, wherein at least 99% of the metal nanoparticles have diameters within ±3 nm of the mean diameter, and

wherein the nanoparticle composition is substantially free of metal ions from the metal nanoparticles.

16. A nanoparticle composition as in claim 15 , wherein at least 99% of the metal nanoparticles have diameters within ±1 nm of the mean diameter.

17. A nanoparticle composition as in claim 15 , wherein the metal nanoparticles have a diameter of 8 nm or less.

18. A nanoparticle composition as in claim 15 , wherein the metal nanoparticles have a ξ potential greater than ±30 mV.

Assignments (4)
TRANSFER/ASSIGNMENT OF ACQUIRED RIGHTS Recorded Jul 13, 2022
From: EMANATION COMMUNICATIONS GROUP, LC
To: LEX VEST LTD.
Reel/Frame 060850/0475 →
LICENSE Recorded Jul 12, 2022
From: EVOQ NANO, INC, FORMERLY ATTOSTAT, INC.
To: EMANATION COMMUNICATIONS GROUP, LC
Reel/Frame 060954/0977 →
CHANGE OF NAME Recorded Nov 23, 2021
From: ATTOSTAT, INC.
To: EVOQ NANO, INC.
Reel/Frame 058195/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 17, 2015
From: NIEDERMEYER, WILLIAM
To: ATTOSTAT, INC.
Reel/Frame 037321/0295 →
Continuity (2)
Continuation 13175708 · Jul 1, 2011
Related Publication 20140288194A1 · Sep 25, 2014