IP Library Granted Patent US 12,651,745
Granted Patent B2
US 12,651,745 · App. 17/769,716 · Granted Jun 9, 2026

Li/Na-ion battery anode materials

Inventors: Alexander S. Groombridge (Cambridge, GB); Jean De La Verpilliere (Cambridge, GB); Sumithra Santhanam (Cambridge, GB); Wanwei Zhang (Cambridge, GB); Maurits E. Houck (Cambridge, GB)
Assignee: Echion Technologies Limited
H01M4/485C01G33/00C01G33/006C01G37/00C01G39/00C01G41/00C01G41/006C01G45/00C01G49/0018C01G49/0045H01M4/0459H01M4/0471H01M4/131H01M4/1391H01M4/366H01M4/625H01M10/0525H01M10/054H01M10/44C01P2002/72C01P2002/82C01P2002/88C01P2004/51C01P2004/61C01P2004/62C01P2004/64C01P2004/84C01P2006/10C01P2006/12C01P2006/40H01M2004/021H01M2004/027Y02E60/10
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Quick Facts
Patent No.
US 12,651,745
App. No.
17/769,716
Granted
Jun 9, 2026
Kind
B2
Abstract

The invention relates to active electrode materials and to methods for the manufacture of active electrode materials. Such materials are of interest as active electrode materials in lithium-ion or sodium-ion batteries. The invention provides an active electrode material expressed by the general formula [M][Nb] y [O] z ; wherein the active electrode material is oxygen deficient; wherein M consists of one of Mg, Cr, W, Mo, Cu, Ga, Ge, Ca, K, Ni, Co, Al, Sn, Mn, Ce, Sb, Y, La, Hf, Ta, Zn, In, or Cd; y satisfies 0.5≤y≤49; and z satisfies 4≤z≤124.

Claims (59)

1 . An active electrode material expressed by the general formula [M][Nb] y [O] z ;

wherein the active electrode material is oxygen deficient;

wherein M consists of one of Mg, Cr, W, Mo, Cu, Ga, Ge, Ca, K, Ni, Co, Al, Sn, Mn, Ce, Sb, Y, La, Hf, Ta, Zn, In, or Cd;

y satisfies 0.5≤y≤49; and

z satisfies 4≤z≤124,

wherein at least some of the active electrode material has a Wadsley-Roth crystal structure.

2 . The active electrode material according to claim 1 , wherein z is defined as z=(z′−z′α) wherein α satisfies 0<α<0.05.

3 . The active electrode material according to any preceding claim 1 , wherein M consists of one of Mo, W, Al, Zn, Ga, Ge, Ta, Cr, Cu, K, Mg, Ni, or Hf.

4 . The active electrode material according to claim 1 , expressed by the general formula [M] x [Nb] y [O] (z′−z′α) , selected from the group consisting of:

MoNb 12 O (33-33 α)

WNb 12 O (33-33 α)

Zn 12 Nb 34 O (87-87 α)

Cu 2 Nb 34 O (87-87 α)

AlNb 11 O (29-29 α)

GaNb 11 O (29-29 α)

GeNb 18 O (47-47 α)

W 5 Nb 16 O (55-55 α)

AlNb 49 O (124-124 α)

GaNb 49 O (124-124 α)

wherein α satisfies 0<α<0.05.

5 . The active electrode material according to claim 1 , expressed by the general formula [M] x [Nb] y [O] (z′−z′α) , selected from the group consisting of:

MoNb 12 O (33-33 α)

WNb 12 O (33-33 α)

Zn 2 Nb 34 O (87-87 α)

AlNb 11 O (29-29 α)

GeNb 18 O (47-47 α)

wherein α satisfies 0≤α≤0.05.

6 . The active electrode material according to claim 1 , expressed by the general formula [M]x[Nb] y [O] (z′−z′α) , selected from the group consisting of:

MoNb 12 O (33-33 α)

WNb 12 O (33-33 α)

wherein α satisfies 0≤α≤0.05.

7 . The active electrode material according to claim 1 , wherein the active electrode material has the formula MoNb 12 O (33-33 α) wherein α satisfies 0<α<0.05.

8 . The active electrode material according to claim 1 , wherein the active electrode material has the formula WNb 12 O (33-33 α) wherein α satisfies 0<α<0.05.

9 . The active electrode material according to claim 1 , wherein the active electrode material has the formula W 5 Nb 6 O (55-55 α) wherein α satisfies 0<α<0.05.

10 . The active electrode material according to claim 1 , wherein the active electrode material has the formula Zn 2 Nb 34 O (87-87 α) wherein α satisfies 0<α<0.05.

11 . The active electrode material according to claim 1 , wherein the active electrode material has the formula AlNb 11 O (29-29 α) wherein α satisfies 0<α<0.05.

12 . The active electrode material according to claim 1 , wherein the active electrode material is expressed by the general formula [W][Nb] y [O] z .

13 . The active electrode material according to any preceding claim 1 , wherein the crystal structure of the active electrode material as determined by X-ray diffraction corresponds to the crystal structure of the unmodified form of the active electrode material, wherein the unmodified form is expressed by the general formula [M][Nb] y [O] z wherein the unmodified form is not oxygen deficient, wherein the unmodified form is selected from M2 I Nb 5 O 13 , M2 I 6 Nb 10.8 O 30 , M2 II Nb 2 O 6 , M2 II 2 Nb 34 O 87 , M2 III Nb 11 O 29 , M2 III Nb 49 O 124 , M2 IV Nb 24 O 62 , M2 IV Nb 2 O 7 , M2 IV 2 Nb 10 O 29 , M2 IV 2 Nb 14 O 39 , M2 IV Nb 14 O 37 , M2 IV Nb 6 O 17 , M2 IV Nb 18 O 47 , M2 V Nb 9 O 25 , M2 V 4 Nb 18 O 55 , M2 V 3 Nb 17 O 50 , M2 VI Nb 12 O 33 , M2 VI 4 Nb 26 O 77 , M2 VI 3 Nb 14 O 44 , M2 VI 5 Nb 16 O 55 , M2 VI 8 Nb 18 O 69 , M2 VI Nb 2 O 8 , M2 VI 20 Nb 22 O 115 , M2 VI 82 Nb 54 O 381 , M2 VI 31 Nb 20 O 143 , M2 VI 15 Nb 2 O 50 , M2 VI 3 Nb 2 O 14 , and M2 VI 11 Nb 12 O 63 , wherein the numerals I, II, III, IV, V, and VI represent the oxidation state of M.

14 . The active electrode material according to claim 1 , wherein substantially all of the active electrode material has a Wadsley-Roth crystal structure.

15 . The active electrode material according to claim 1 wherein the active electrode material comprises a plurality of primary crystallites.

16 . The active electrode material according to claim 15 , wherein an average diameter of the primary crystallites is from 10 nm to 10 μm.

17 . The active electrode material according to claim 15 , wherein some or all of the primary crystallites are agglomerated into secondary particles, and an average diameter of the secondary particles is from 1 μm to 30 μm.

18 . The active electrode material according to claim 17 , wherein the active electrode material comprises a carbon coating formed on the surface of the primary crystallites and/or secondary particles.

19 . The active electrode material according to claim 18 wherein the carbon coating is present in an amount of up to 5 w/w%, based on the total weight of the active electrode material.

20 . The active electrode material according to claim 1 , wherein the active electrode material has a BET surface area in the range of 0.1-100 m 2 /g, or 0.5-50 m 2 /g, or 1-20 m 2 /g.

21 . An active electrode material according to claim 1 wherein the crystal structure of the active electrode material, as determined by X-ray diffraction analysis, corresponds to the crystal structure of one or more of:

MoNb 12 O 33

WNb 12 O 33

Zn 2 Nb 34 O 87

CU 2 Nb 34 O 87

AlNb 11 O 29

GaNb 11 O 29

GeNb 18 O 47

W 5 Nb 16 O 55

AlNb 49 O 124

GaNb 49 O 124.

22 . An active electrode material according to claim 1 , further comprising Li and/or Na.

23 . An electrochemical device comprising an anode, a cathode and an electrolyte disposed between the anode and the cathode, wherein the anode comprises the electrode active material according to claim 1 .

24 . The electrode active material according to claim 12 , wherein the active electrode material is selected from WNb 12 O (33-33α) , and W 5 Nb 16 O (55-55α) wherein α satisfies 0<α≤0.05.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2022
From: GROOMBRIDGE, ALEXANDER S.; DE LA VERPILLIERE, JEAN; SANTHANAM, SUMITHRA; ZHANG, WANWEI; HOUCK, MAURITS E.
To: ECHION TECHNOLOGIES LIMITED
Reel/Frame 062107/0528 →
Priority Claims (5)
GB 1915151 · Oct 18, 2019 · national
GB 2002487 · Feb 21, 2020 · national
GB 2008352 · Jun 3, 2020 · national
GB 2011681 · Jul 28, 2020 · national
GB 2013576 · Aug 28, 2020 · national
Continuity (1)
Related Publication 20220384797A1 · Dec 1, 2022
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