IP Library Patent Application 17940700
Patent Application
App. No. 17/940,700

LITHIUM ION CELLS WITH HIGH RATE ELECTROLYTE FOR CELLS WITH SILICON OXIDE ACTIVE MATERIALS ACHIEVING LONG CYCLE LIFE

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Patent No.
US None
App. No.
17/940,700
Abstract

Electrolytes are described that involve lithium salt blends and compatible nonaqueous solvents that provide to high rate performance, charging and discharging, of lithium ion cells using silicon-based active materials, such as silicon suboxide composites, for example, silicon oxide/silicon/carbon composites. The lithium salts generally were a blend of LiPF 6 , and LiFSI or LiTFSI. The solvents generally comprised fluoroethylene carbonate and dimethyl carbonate with optional cosolvents and/or other additives.

Claims (38)

1 . A high rate capable electrolyte for a lithium-based cell consisting of:

about 1.3M to about 2.5M lithium salt, consisting of from about 0.05M to about 0.8M LiPF 6 , from about 0.8M to about 2.1M lithium bis(fluorosulfonyl)imide (LiFSI) or lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), and no more than about 5 mole percent optional other lithium salts;

from about 5 weight percent (wt %) to about 25 wt % fluoroethylene carbonate;

from about 65 wt % to about 95 wt % cosolvent consisting of at least about 30 wt % dimethyl carbonate, from 0 to about 50 wt % diethyl carbonate, from 0 to about 50 wt % hydrofluoro ether, from about 0 to about 50 wt % fluorinated linear carbonate, from about 0 to about 20 wt % propylene carbonate, from about 0 to about 20 wt % alkyl acetate, and mixtures thereof, wherein the weight percent values of fluoroethylene carbonate and cosolvent add to 100 wt %; and

no more than about 10 weight percent optional additives relative to the total electrolyte weight.

2 . The high rate capable electrolyte of claim 1

wherein the lithium salt consists essentially of about 0.1M to about 0.4M LiPF 6 and LiFSI.

3 . The high rate capable electrolyte of claim 1

wherein the solvent consists essentially of from about 5 wt % to about 25 wt % fluoroethylene carbonate; and

from about 75 wt % to about 95 wt % dimethyl carbonate.

4 . The high rate capable electrolyte of claim 1

wherein the cosolvent consists essentially of dimethyl carbonate, propylene carbonate and an alkyl acetate.

5 . The high rate capable electrolyte of claim 1

wherein the cosolvent consists essentially of dimethyl carbonate and linear fluorocarbonate.

6 . The electrolyte of claim 5

wherein the linear fluorocarbonate comprises fluoroethylmethylcarbonate.

7 . The electrolyte of claim 5

wherein the linear fluorocarbonate is CF 3 CH 2 O(CO)OCH 3

8 . The electrolyte of claim 7 wherein the weight ratio of dimethyl carbonate to CF 3 CH 2 O(CO)OCH 3 is from about 1:0.6 to about 1:1.2.

9 . The electrolyte of claim 1

wherein the cosolvent consists essentially of dimethyl carbonate and a hydrofluoro ether.

10 . The electrolyte of claim 9

wherein the hydrofluoro ether comprises CHF 2 (CF 2 ) 3 CH 2 OCF 2 CHF 2 .

11 . The electrolyte of claim 10 wherein the weight ratio of dimethyl carbonate to CHF 2 (CF 2 ) 3 CH 2 OCF 2 CHF 2 is from about 1:0.6 to about 1:1.2.

12 . The electrolyte of claim 1 wherein the optional additives are selected from the group consisting of triethyl phosphate (TEP), ethoxy(pentafluoro)cyclotriphosphazene (PFPN), 1,3-propane sultone (PS), and mixtures thereof.

13 . The electrolyte of claim 12 comprising from about 0.1 wt % to about 5 wt % additive.

14 . The electrolyte of claim 1 wherein the optional lithium salt additive is LiBF 4 , LiBOB, LiBFP, LiDFOB, or mixtures thereof.

15 . The electrolyte of claim 14 wherein the lithium salt comprises from about 0.1 mole percent to about 2.5 mole percent lithium salt additive.

16 . The electrolyte of claim 1 having from about 0.05M to about 0.4M LiPF 6 and from about 1.5M to about 2.1M lithium bis(fluorosulfonyl)imide (LiFSI), and cosolvent consisting of from about 35 wt % to about 70 wt % dimethyl carbonate, from 0 to about 50 wt % hydrofluoro ether, from about 0 to about 50 wt % fluorinated linear carbonate, from about 0 to about 20 wt % propylene carbonate, from about 0 to about 20 wt % alkyl acetate, and mixtures thereof, wherein the combined weight percent of hydrofluoroether, fluoronated linear carbonate, propylene carbonate and alkyl acetate is at least about 10 wt %.

17 . A lithium ion cell comprising:

a negative electrode comprising from about 75 wt % to about 96 wt % an active material, from about 0.1 wt % to about 7 wt % nanoscale conductive particulates and from about 4 wt % to about 20 wt % polymer binder, wherein the active material comprises from about 45 wt % to about 100% silicon-based active material, and from 0 wt % to about 55 wt % graphitic carbon;

a positive electrode comprising a lithium metal oxide, conductive particulates, and a polymer binder;

a separator between the negative electrode and the positive electrode;

electrolyte comprising from about 1.1M to about 2.2M lithium salt and non-aqueous solvent, wherein the lithium salt comprises from about 60 mole percent to about 100 mole percent LiFSI, LiTFSI, or a mixture thereof, and wherein the non-aqueous solvent comprises from about 5 wt % to about 25 wt % fluoroethylene carbonate, 35 wt % to 90 wt % dimethyl carbonate, and from 0 to about 50 wt % diethyl carbonate, hydrofluoroether, fluoroalkyl carbonate, propylene carbonate, ethyl acetate, methyl acetate, propyl acetate, or mixtures thereof, wherein the weight percent values are relative to the solvent;

a container enclosing the negative electrode, the positive electrode, the separator and the electrolyte;

wherein the cell has a discharge specific capacity at a rate of 4 C of at least about 120 mAh/g between 2.5V and a selected charge voltage based on the weight of the cathode active material and wherein the impedance is no more than about 10 mOhms at the 600th cycle at a state of charge of 30%.

18 . The lithium ion cell of claim 17 wherein the silicon-based active material comprises a silicon-silicon oxide carbon composite material.

19 . The lithium ion cell of claim 17 wherein the graphitic carbon has a BET surface area from about 1 m 2 /g to about 20 m 2 /g.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 11, 2024
From: HAYS, KEVIN; ELANGOVAN, AYYAPPAN; KUMAR, SUJEET; LOPEZ, HERMAN A.
To: ZENLABS ENERGY, INC.
Reel/Frame 069201/0337 →
CHANGE OF NAME Recorded Nov 11, 2024
From: ZENLABS ENERGY, INC.
To: IONBLOX, INC.
Reel/Frame 069325/0742 →