IP Library Granted Patent US 11,837,393
Granted Patent B2
US 11,837,393 · App. 17/490,800 · Granted Dec 5, 2023

Iron-based nanoparticles and grains

Inventors: Jian-Ping Wang (Shoreview, MN); Bin Ma (Roseville, MN); Jinming Liu (Minneapolis, MN); Yiming Wu (Shoreview, MN); YanFeng Jiang (Minneapolis, MN)
Assignee: Regents of the University of Minnesota
H01F1/065B22F1/054B22F1/0553B22F1/06B22F9/04C22C38/00C22C38/001C22C38/10C23C8/26C23C8/50C23C8/80H01F1/059H01F1/0551H01F1/061B22F1/0547B22F2301/35B22F2302/20B22F2304/054H01F1/0552
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Quick Facts
Patent No.
US 11,837,393
App. No.
17/490,800
Granted
Dec 5, 2023
Kind
B2
Abstract

Example nanoparticles may include an iron-based core, and a shell. The shell may include a non-magnetic, anti-ferromagnetic, or ferrimagnetic material. Example alloy compositions may include an iron-based grain, and a grain boundary. The grain boundary may include a non-magnetic, anti-ferromagnetic, or ferrimagnetic material. Example techniques for forming iron-based core-shell nanoparticles may include depositing a shell on an iron-based core. The depositing may include immersing the iron-based core in a salt composition for a predetermined period of time. The depositing may include milling the iron-based core with a salt composition for a predetermined period of time. Example techniques for treating a composition comprising core-shell nanoparticles may include nitriding the composition.

Claims (17)

1. A nanoparticle comprising:

an iron-based core, wherein the iron-based core comprises elemental iron and a″-Fe 16 N 2 ; and

a shell, wherein the shell comprises an anti-ferromagnetic material, wherein the shell has a thickness of about 10 nm;

wherein the nanoparticle has a coercivity of at least about 600 Oe.

2. The nanoparticle of claim 1 , wherein the shell comprises at least one of manganese nitride or ferromanganese.

3. The nanoparticle of claim 1 , wherein the core has a major dimension between about 20 nm and about 100 nm.

4. The nanoparticle of claim 1 , wherein the core is an ellipsoid with a ratio of a maximum diameter to a minimum diameter of at least about 2.

5. A bulk magnetic material comprising a plurality of the nanoparticles of claim 1 .

6. The nanoparticle of claim 1 , formed by depositing a shell on an iron-based core to form a core-shell nanoparticle by at least milling the iron-based core with a salt composition for a predetermined period of time; wherein the salt composition comprises at least one of precursors of silica, aluminum oxide, silicon nitride, aluminum nitride, manganese nitride, zinc oxide, iron oxide, ferromanganese, Fe 4 N, and Fe 16 N 2 .

7. The nanoparticle of claim 6 , wherein the salt composition comprises at least one of a solid, a slurry, a paste, a suspension, a liquid, a solution, a polymer, or a gel.

8. The nanoparticle of claim 6 , wherein the nanoparticle is formed by a method further comprising, after depositing the shell:

filtering the core-shell nanoparticle from the salt composition, and

drying the core-shell nanoparticle.

9. The nanoparticle of claim 6 , wherein the nanoparticle is formed by a method further comprising, after depositing the shell, nitriding the core-shell nanoparticle.

10. The nanoparticle of claim 9 , wherein nitriding the core-shell nanoparticle comprises autoclaving the core-shell nanoparticle at a predetermined pressure, at a predetermined temperature, for a predetermined period of time, in a nitrogen-rich environment, wherein the predetermined pressure is greater than 100 atmospheres.

11. The nanoparticle of claim 10 , wherein the nitrogen-rich environment is generated by a nitrogen source comprising at least one of ammonia, ammonium nitrate, an amide-containing material, or a hydrazine-containing material.

12. The nanoparticle of claim 6 , wherein the nanoparticle is formed by a method further comprising, after depositing the shell, annealing the core-shell nanoparticle in the presence of an applied magnetic field, wherein the annealing the core-shell nanoparticle in the presence of an applied magnetic field comprises exposing the core-shell nanoparticle to a magnetic field having a predetermined strength at a predetermined temperature for a predetermined period of time.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jan 31, 2024
From: REGENTS OF THE UNIVERSITY OF MINNESOTA
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 066386/0018 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2022
From: MA, BIN; WANG, JIAN-PING; LIU, JINMING; JIANG, YANFENG; WU, YIMING
To: REGENTS OF THE UNIVERSITY OF MINNESOTA
Reel/Frame 058579/0827 →
Continuity (3)
Continuation 16340031
Provisional Application 62405661 · Oct 7, 2016
Related Publication 20220080500A1 · Mar 17, 2022