IP Library Granted Patent US 11,251,430
Granted Patent B2
US 11,251,430 · App. 16/291,617 · Granted Feb 15, 2022

ϵ-VOPO

Inventors: Carrie Siu (Philadelphia, PA); M. Stanley Whittingham (Vestal, NY)
Assignee: The Research Foundation for The State University of New York
H01M4/5825C01B25/372H01M4/136H01M4/1397H01M4/623H01M4/625H01M10/0525C01P2002/72C01P2002/90C01P2004/03C01P2004/04H01M2004/021H01M2004/028
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Quick Facts
Patent No.
US 11,251,430
App. No.
16/291,617
Granted
Feb 15, 2022
Kind
B2
Abstract

The epsilon polymorph of vanadyl phosphate, ε-VOPO 4 , made from the solvothermally synthesized H 2 VOPO 4 , is a high density cathode material for lithium-ion batteries optimized to reversibly intercalate two Li-ions to reach the full theoretical capacity at least 50 cycles with a coulombic efficiency of 98%. This material adopts a stable 3D tunnel structure and can extract two Li-ions per vanadium ion, giving a theoretical capacity of 305 mAh/g, with an upper charge/discharge plateau at around 4.0 V, and one lower at around 2.5 V.

Claims (39)

1. An intercalation electrode composition for a lithium ion battery cathode comprising a transition metal phosphate, in which a transition metal ion undergoes a change in oxidation state of two between a charged state filled with intercalated lithium ions and discharged state depleted of intercalated lithium ions, having a capacity of at least 275 mAh/g at a discharge rate of C/20.

2. The intercalation electrode composition according to claim 1 , having a capacity of at least 290 mAh/g.

3. The intercalation electrode composition according to claim 1 , having a capacity of at least 305 mAh/g.

4. The intercalation electrode composition according to claim 1 , having a discharge capacity of at least 90% of a theoretical value for the discharge capacity of the intercalation electrode composition based on an amount of the transition metal which undergoes the change in oxidation state.

5. The intercalation electrode composition according to claim 1 , wherein the transition metal is vanadium and the intercalation electrode composition comprises VOPO 4 .

6. The intercalation electrode composition according to claim 1 , wherein the transition metal is vanadium and the intercalation electrode composition comprises principally ε-VOPO 4 and at least one of graphene and carbon nanotubes, having an energy capacity of at least 850 mWh/g.

7. The intercalation electrode composition according to claim 1 , wherein the transition metal is vanadium and the intercalation electrode composition comprises principally ε-VOPO 4 and up to 10% by weight graphene.

8. The intercalation electrode composition according to claim 1 , wherein the transition metal is vanadium and the intercalation electrode composition comprises at least 75% by weight ε-VOPO 4 , at least 5% by weight graphene nanoplatelets, and at least 5% by weight of a binder.

9. The intercalation electrode composition according to claim 1 , wherein the transition metal is vanadium and the intercalation electrode composition comprises 75% by weight ε-VOPO 4 , 15% by weight graphene nanoplatelets, and 10% by weight of a poly vinylidene fluoride (PVDF) binder.

10. The intercalation electrode composition according to claim 1 , configured to form a cathode in a battery, the battery further comprising:

a lithium or lithium ion anode;

an electrolyte adapted to operate at a battery potential of at least 4.5 V;

a separator; and

a supporting lithium salt.

11. The intercalation electrode composition according to claim 1 , having:

a first state in which at least 80 mol % of the transition metal ions are oxidized in a first oxidation state and associated with two lithium ions per transition metal ion, and

a second state in which at least 80 mol % of the transition metal ions are oxidized in a second oxidation state which differs by two from the first oxidation state.

12. The intercalation electrode composition according to claim 1 , having a dual lithium ion exchange characteristic, having a capacity of about 125 mAh/g at a discharge rate of C/20 while maintaining a voltage exceeding 3.7 V.

13. The intercalation electrode composition according to claim 1 , having a dual lithium ion exchange characteristic, having an energy capacity of at least 850 mWh/g and a capacity of at least 290 mAh/g.

14. A lithium ion battery cathode composition, comprising ε-VOPO 4 with intercalated lithium ions, electrically conductive graphene, and a binder, having a capacity of at least 125 mAh/g while maintaining a voltage exceeding 3.7 V, at a discharge rate of C/20, on a current collector substrate.

15. The lithium ion battery cathode composition according to claim 14 , having a theoretical capacity of 305 mA/g and an observed capacity of at least 275 mAh/g.

16. The lithium ion battery cathode composition according to claim 14 ,

consisting essentially of the ε-VOPO 4 with intercalated lithium ions, electrically conductive forms of carbon comprising the electrically conductive graphene, and the binder,

wherein the conductive graphene comprises graphene nanoplatelets, the graphene nanoplatelets comprising at least 3% by weight of the VOPO 4 , having an energy density of at least 880 mWh/g, and a capacity of at least 300 mAh/g.

17. The lithium ion battery cathode composition according to claim 14 , having a current-voltage profile which displays voltage plateaus on discharge at a discharge rate of C/20, at about 2.1 V, 2.25 V, 2.5 V, and 3.9 V representing a dual-lithium ion exchange per vanadium ion characteristic of at least 90%.

18. A lithium ion battery cathode, comprising:

an intercalation crystal material consisting essentially of solvothermally generated ε-VOPO 4 ;

graphene nanoplatelets;

a binder; and

a current collector coated with a slurry of a mixture of the ε-VOPO 4 , graphene nanoplatelets, and the binder,

wherein the lithium ion battery cathode has a dual-lithium ion exchange per vanadium ion characteristic of at least 90%.

19. The lithium ion battery cathode according to claim 18 , wherein the graphene nanoplatelets have a surface area of at least 100 m 2 /g and the binder is polyvinylidene fluoride.

20. The lithium ion battery cathode according to claim 19 , wherein:

the graphene nanoplatelets are present in an amount of between 5% and 15% by weight; and

the vanadium undergoes a change in oxidation state between a first state in which at least 80 mol % of the vanadium is oxidized in a first oxidation state and associated with two lithium ions per vanadium, and a second state in which at least 80 mol % of the vanadium is oxidized in a second oxidation state which differs by two from the first oxidation state and is associated with zero lithium ions per vanadium, having at a discharge rate of C/20:

a capacity of at least 290 mAh/g between 4.5V and 1.6V,

a capacity of about 125 mAh/g between 4.5V and 3.7V,

an energy capacity of at least 850 mWh/g, and a

current-voltage profile which displays voltage plateaus on discharge at a discharge rate of C/20, at about 2.1 V, 2.25 V, 2.5 V, and 3.9 V.

Assignments (2)
CONFIRMATORY LICENSE Recorded May 28, 2020
From: STATE UNIVERSITY OF NY,BINGHAMTON
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 052777/0341 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2019
From: SIU, CARRIE, MS; WHITTINGHAM, M STANLEY, DR
To: THE RESEARCH FOUNDATION FOR THE STATE UNIVERSITY OF NEW YORK
Reel/Frame 048494/0547 →
Continuity (2)
Provisional Application 62638893 · Mar 5, 2018
Related Publication 20190273257A1 · Sep 5, 2019
Cited By (5)
US 12,368,155 US 12,412,897 US 12,431,480 US 12,640,360 US 12,700,582