IP Library Granted Patent US 12,142,754
Granted Patent B2
US 12,142,754 · App. 17/368,252 · Granted Nov 12, 2024

“Flower-like” LI

Inventors: Stanislaus Wong (Upton, NY); Lei Wang (Port Jefferson, NY); Coray McBean (Malverne, NY); Amy C. Marschilok (Stony Brook, NY); Kenneth Takeuchi (Stony Brook, NY); Esther S. Takeuchi (Stony Brook, NY)
Assignee: THE RESEARCH FOUNDATION FOR THE STATE UNIVERSITY OF NEW YORK
H01M4/364H01M4/366H01M4/485H01M4/523H01M4/587H01M10/0525H01M2004/021H01M2004/027H01M4/624
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Quick Facts
Patent No.
US 12,142,754
App. No.
17/368,252
Granted
Nov 12, 2024
Kind
B2
Abstract

A method of fabricating nanocomposite anode material embodying a lithium titanate (LTO)-multi-walled carbon nanotube (MWNT) composite intended for use in a lithium-ion battery includes providing multi-walled carbon nanotube (MWNTs), including nanotube surfaces, onto which functional oxygenated carboxylic acid moieties are arranged, generating 3D flower-like, lithium titanate (LTO) microspheres, including thin nanosheets and anchoring the acid-functionalized MWNTs onto surfaces of the 3D LTO microspheres by π-π interaction strategy to realize the nanocomposite anode material.

Claims (16)

1. A nanocomposite anode material comprising a lithium titanate (LTO)-multi-walled carbon nanotube (MWNT) composite comprising a 3D-flower like lithium titanite (LTO) microsphere, a linker molecule having a terminal carboxylic acid group bonded to a conjugated aromatic ring, and an acid-functionalized MWNT, wherein the terminal carboxylic acid group of the linker molecule is bonded to the 3D-flower like LTO microsphere and the conjugated aromatic ring of the linker molecule is bonded, via π-π interaction, to an aromatic ring present in the acid-functionalized MWNT.

2. The nanocomposite anode material of claim 1 , wherein the conjugated aromatic ring is a conjugated phenyl ring.

3. The nanocomposite anode material of claim 1 , wherein the aromatic ring present in the acid-functionalized MWNT is a conjugated phenyl ring.

4. The nanocomposite anode material of claim 1 , wherein the linker molecule is 4-mercaptobenzoic acid.

5. The nanocomposite anode material of claim 1 , wherein the acid-functionalized MWNT comprises a MWNT having functional, oxygenated carboxylic acids moieties absorbed on the surface thereof.

6. The nanocomposite anode material of claim 1 , wherein the acid-functionalized MWNT has a diameter from 10 to 30 μm.

7. The nanocomposite anode material of claim 1 , wherein the terminal carboxylic acid group of the linker molecule is bonded to a Ti site on the 3D-flower like LTO microsphere.

8. The nanocomposite anode material of claim 1 , wherein the 3D-flower like LTO microsphere has a crystallite size of 12.6 nm.

9. A lithium-ion battery comprising an anode composed of a nanocomposite anode material comprising a lithium titanate (LTO)-multi-walled carbon nanotube (MWNT) composite comprising a 3D-flower like lithium titanite (LTO) microsphere, a linker molecule having a terminal carboxylic acid group bonded to a conjugated aromatic ring, and an acid-functionalized MWNT, wherein the terminal carboxylic acid group of the linker molecule is bonded to the 3D-flower like LTO microsphere and the conjugated aromatic ring of the linker molecule is bonded, via π-π interaction, to an aromatic ring present in the acid-functionalized MWNT.

10. The lithium-ion battery of claim 9 , wherein the conjugated aromatic ring is a conjugated phenyl ring.

11. The lithium-ion battery of claim 9 , wherein the aromatic ring present in the acid-functionalized MWNT is a conjugated phenyl ring.

12. The lithium-ion battery of claim 9 , wherein the linker molecule is 4-mercaptobenzoic acid.

13. The lithium-ion battery of claim 9 , wherein the acid-functionalized MWNT comprises a MWNT having functional, oxygenated carboxylic acids moieties absorbed on the surface thereof.

14. The lithium-ion battery of claim 9 , wherein the acid-functionalized MWNT has a diameter from 10 to 30 μm.

15. The lithium-ion battery of claim 9 , wherein the terminal carboxylic acid group of the linker molecule is bonded to a Ti site on the 3D-flower like LTO microsphere.

16. The lithium-ion battery of claim 9 , wherein the 3D-flower like LTO microsphere has a crystallite size of 12.6 nm.

Assignments (1)
CONFIRMATORY LICENSE Recorded Sep 2, 2022
From: STATE UNIVERSITY NEW YORK STONY BROOK
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 061375/0122 →
Continuity (3)
Division 16250907 · Jan 17, 2019
Provisional Application 62618248 · Jan 17, 2018
Related Publication 20220059819A1 · Feb 24, 2022