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