Composition

JP2025122056A5Inactive Publication Date: 2025-09-26MEXICHEM FLUOR S A DE CV
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Patent Information

Application Number
JP2025082264
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-05-01
Filing Date
2025-05-15
Publication Date
2025-09-26
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing non-aqueous electrolytes in batteries are flammable and pose safety hazards, and they contribute to environmental issues such as global warming potential, while also requiring improved chemical stability and rheological properties for efficient ion flow.

Method used

The use of a compound of Formula 1 in non-aqueous battery electrolyte formulations, which includes fluorinated alkyl groups, enhances safety by reducing flammability and improves chemical stability, ion flow, and environmental impact.

Benefits of technology

The compound of Formula 1 reduces flammability, increases oxidative stability, and enhances battery performance by improving capacity retention, cyclability, and compatibility with electrode chemistries, while minimizing environmental impact.

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Abstract

To provide an electrolyte for a lithium ion battery that exhibits low flammability along with properties such as a high flash point, and does not cause environmental problems related to disposal after use or other environmental problems such as global warming potential.SOLUTION: In the use of a compound of the Formula 1 in a non-aqueous battery electrolyte formulation, each R1 to R4 is selected from the group consisting of F, Cl, H, CF3, and C1 to C6 alkyl, which may be at least partially fluorinated, and at least one of R1 to R4 is or includes F.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present disclosure relates to non-aqueous electrolytes for energy storage devices, including batteries and capacitors, particularly for secondary batteries and devices known as supercapacitors. [Background technology]

[0002] There are two main types of batteries: primary and secondary. Primary batteries are also known as non-rechargeable batteries. Secondary batteries are also known as rechargeable batteries. A well-known type of rechargeable battery is the lithium-ion battery. Lithium-ion batteries have high energy density, no memory effect, and low self-discharge.

[0003] Lithium-ion batteries are commonly used in portable electronic devices and electric vehicles. In batteries, lithium ions move from the negative electrode to the positive electrode during discharge and back during charging.

[0004] Typically, the electrolyte contains additives in addition to a non-aqueous solvent and an electrolyte salt. The electrolyte is typically a mixture of organic carbonates such as ethylene carbonate, propylene carbonate, fluoroethylene carbonate, and dialkyl carbonate containing a lithium ion electrolyte salt. Many lithium salts can be used as the electrolyte salt, and common examples include lithium hexafluorophosphate (LiPF), lithium bis(fluorosulfonyl)imide (LiFSI), and lithium bis(trifluoromethanesulfonyl)imide (LiTFSI).

[0005] The electrolyte must perform several distinct roles within the battery.

[0006] The primary role of the electrolyte is to facilitate the flow of charge between the cathode and anode. This occurs by transport of metal ions within the battery from and / or to the anode and / or cathode, where charge is released / introduced by chemical reduction or oxidation.

[0007] Therefore, the electrolyte must provide a medium capable of solvating and / or supporting the metal ions.

[0008] Due to the use of lithium electrolyte salts and the exchange of lithium ions with lithium metal (which is highly reactive with water, as is the sensitivity of other battery components to water), the electrolyte is typically non-aqueous.

[0009] Additionally, the electrolyte must have suitable rheological properties to allow / enhance the flow of ions therein at the typical operating temperatures to which the battery will be exposed and expected to function.

[0010] Furthermore, the electrolyte must be as chemically inert as possible. This is particularly relevant in the context of the battery's expected lifespan with regard to internal corrosion (e.g., of the electrodes and casing) and battery leakage issues within the battery. Also important to consider in chemical stability is flammability. Unfortunately, common electrolyte solvents often contain flammable materials, which can pose safety hazards.

[0011] This can be problematic because the battery can accumulate heat during operation while discharging or being discharged. This is especially true for high-density batteries such as lithium-ion batteries. Therefore, it is desirable for the electrolyte to exhibit low flammability along with other related properties such as a high flash point.

[0012] It is also desirable that the electrolyte not pose any environmental issues related to disposability after use or other environmental issues such as global warming potential. DISCLOSURE OF THE INVENTION

[0013] It is an object of the present invention to provide a non-aqueous electrolyte that offers improved properties over prior art non-aqueous electrolytes.

[0014] Usage According to a first aspect of the present invention there is provided the use of a compound of formula 1 in a non-aqueous battery electrolyte formulation.

[0015] According to a second aspect of the present invention, there is provided the use of a non-aqueous battery electrolyte formulation comprising a compound of Formula 1 in a battery.

[0016] Composition / Device Aspects According to a third aspect of the present invention, there is provided a battery electrolyte formulation comprising a compound of Formula 1.

[0017] According to a fourth aspect of the present invention, there is provided a formulation comprising a metal ion and a compound of formula 1, optionally in combination with a solvent.

[0018] According to a fifth aspect of the present invention, there is provided a battery comprising a battery electrolyte formulation comprising a compound of Formula 1.

[0019] Method aspects According to a sixth aspect of the present invention there is provided a method of reducing the flash point of a battery and / or battery electrolyte formulation comprising the addition of a formulation comprising a compound of Formula 1.

[0020] According to a seventh aspect of the present invention, there is provided a method of powering an article, comprising using a battery comprising a battery electrolyte formulation comprising a compound of Formula 1.

[0021] According to an eighth aspect of the present invention, there is provided a method of improving a battery electrolyte formulation, the method comprising either (a) at least partially replacing the battery electrolyte with a battery electrolyte formulation comprising a compound of Formula 1, and / or (b) supplementing the battery electrolyte with a battery electrolyte formulation comprising a compound of Formula 1.

[0022] According to a ninth aspect of the present invention, a compound of formula 2 [ka] A method for preparing a compound of Formula 1 by reacting with an oxidizing agent is provided.

[0023] Preferred examples of oxidizing agents include air, oxygen, and oxygen-containing compounds such as peroxides, persalts, and compounds of oxygen with other elements such as hypohalites. Preferably, the oxidizing agent includes hypohalites such as chlorites with alcohol ROH under basic reaction conditions at high temperature and pressure.

[0024] In Equation 2, each R 1 ~R 4 is selected from the group consisting of F, Cl, H, CF, and C-C alkyl, which may be at least partially fluorinated; R 1 ~R 4 At least one of is or contains F.

[0025] According to a tenth aspect of the present invention, there is provided a method of preparing a battery electrolyte formulation comprising mixing a compound of Formula 1 with a lithium-containing compound.

[0026] According to an eleventh aspect of the present invention, there is provided a method for improving battery capacity / charge transfer within a battery / battery life / etc. by use of a compound of formula 1.

[0027] Compound of Formula 1 For all aspects of the present invention, preferred embodiments of formula (1) are: [ka] In the formula, each R 1 ~R 4 is selected from the group consisting of F, Cl, H, CF, and C-C alkyl, which may be at least partially fluorinated; R 1 ~R 4 At least one of is or contains F.

[0028] advantage In an embodiment of the present invention, the electrolyte formulation has been found to be surprisingly advantageous.

[0029] The benefits of using compounds of Formula 1 in electrolyte solvent compositions manifest in several ways: their presence can reduce the flammability of the electrolyte composition (e.g., as measured by flash point), their oxidative stability makes them useful for batteries required to operate in harsh conditions, and they are compatible with common electrode chemistries and can even enhance the performance of these electrodes through their interaction with them.

[0030] Additionally, electrolyte compositions containing compounds of Formula 1 have been found to have excellent physical properties, including low viscosity and low melting points, but high boiling points with the associated advantage of little or no gas generation during use. The electrolyte formulations have been found to wet and spread very well onto surfaces, particularly fluorine-containing surfaces, which is hypothesized to result from a beneficial relationship between their adhesive and cohesive strengths, resulting in low contact angles.

[0031] Furthermore, electrolyte compositions containing compounds of Formula 1 have been found to have superior electrochemical properties, including improved capacity retention, improved cyclability and capacity, improved compatibility with other battery components such as separators and current collectors, and with all types of cathode and anode chemistries (including systems operating over a range of voltages, particularly high voltages, and including systems containing additives such as silicon). In addition, the electrolyte formulations exhibit good solvation of metal (e.g., lithium) salts and interaction with other electrolyte solvents present.

[0032] Preferred features relating to aspects of the present invention are as follows:

[0033] Preferred compounds Preferred examples of compounds of the first embodiment of formula 1 [ka] teeth, R 1 is H, R 2 is CF3, R 3 is F or CF3, R 4 is F or CF3.

[0034] electrolyte formulation Preferably, the electrolyte formulation comprises 0.1% to 99.9% by weight of the compound of Formula 1. Optionally, the compound of Formula 1 is present (in the electrolyte formulation) in an amount greater than 1% by weight, optionally greater than 5% by weight, optionally greater than 10% by weight, optionally greater than 15% by weight, optionally greater than 20% by weight, and optionally greater than 25% by weight. Optionally, the compound of Formula 1 is present (in the electrolyte formulation) in an amount less than 1% by weight, optionally less than 5% by weight, optionally less than 10% by weight, optionally less than 15% by weight, optionally less than 20% by weight, and optionally less than 25% by weight.

[0035] metal salts The non-aqueous electrolyte solution further comprises a metal electrolyte salt, which is typically present in an amount of 0.1 to 20% by weight, based on the total weight of the non-aqueous electrolyte formulation.

[0036] The metal salt is preferably a salt of lithium, sodium, magnesium, calcium, lead, zinc, or nickel.

[0037] Preferably, the metal salt comprises a salt of lithium, such as one selected from the group comprising lithium hexafluorophosphate (LiPF), lithium perchlorate (LiClO), lithium tetrafluoroborate (LiBF), lithium triflate (LiSOCF), lithium bis(fluorosulfonyl)imide (Li(FSO)N), and lithium bis(trifluoromethanesulfonyl)imide (Li(CFSO)N).

[0038] solvent The non-aqueous electrolyte may contain a solvent, and preferred examples of the solvent include fluoroethylene carbonate (FEC) and / or propylene carbonate (PC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), or ethylene carbonate (EC).

[0039] When present, the solvent comprises 0.1% to 99.9% by weight of the liquid component of the electrolyte.

[0040] additives The non-aqueous electrolyte may contain additives.

[0041] A suitable additive may serve as a surface film-forming agent that forms an ion-permeable film on the surface of the positive or negative electrode, which can anticipate the decomposition reaction of the non-aqueous solvent and generate electrolyte salt on the surface of the electrode, thereby preventing the decomposition reaction of the non-aqueous electrolyte on the surface of the electrode.

[0042] Examples of film-forming additives include vinylene carbonate (VC), ethylene sulfite (ES), lithium bis(oxalato)borate (LiBOB), cyclohexylbenzene (CHB), and orthoterphenyl (OTP). The additives may be used alone or in combination of two or more.

[0043] When present, the additive is present in an amount of 0.1 to 3 weight percent based on the total weight of the non-aqueous electrolyte formulation.

[0044] battery Primary / secondary battery The battery may comprise a primary battery (non-rechargeable) or a secondary battery (rechargeable). Most preferably, the battery comprises a secondary battery.

[0045] Batteries containing non-aqueous electrolytes will generally contain several components. The components that make up a preferred non-aqueous electrolyte secondary battery are described below. It should be understood that other battery components (such as a temperature sensor) may be present, and the following list of battery components is not intended to be exhaustive.

[0046] electrode Batteries generally contain a positive electrode and a negative electrode. The electrodes are usually porous, allowing metal ions (lithium ions) to enter and exit their structure in a process called intercalation or deintercalation.

[0047] In rechargeable batteries (secondary batteries), the term cathode refers to the electrode where reduction occurs during the discharge cycle. In lithium-ion cells, the positive electrode ("cathode") is a lithium-based electrode.

[0048] Positive electrode (cathode) The positive electrode is generally composed of a positive electrode current collector, such as a metal foil, and optionally, a positive electrode active material layer disposed on the positive electrode current collector.

[0049] The positive electrode current collector may be a foil of a metal that is stable over the range of potentials applied to the positive electrode, or a film having a skin layer of a metal that is stable over the range of potentials applied to the positive electrode. Aluminum (Al) is a preferred metal that is stable over the range of potentials applied to the positive electrode.

[0050] The positive electrode active material layer generally includes a positive electrode active material and other components such as a conductive agent and a binder, and is generally obtained by mixing the components in a solvent, applying the mixture to a positive electrode current collector, and then drying and rolling.

[0051] The positive electrode active material may be a lithium (Li)-containing transition metal oxide. The transition metal element may be at least one selected from the group consisting of scandium (Sc), manganese (Mn), iron (Fe), cobalt (Co), nickel (Ni), copper (Cu), and yttrium (Y). Of these transition metal elements, manganese, cobalt, and nickel are most preferred.

[0052] Some of the transition metal atoms in the transition metal oxide can be replaced by atoms of non-transition metal elements. The non-transition element can be selected from the group consisting of magnesium (Mg), aluminum (Al), lead (Pb), antimony (Sb), and boron (B). Among these non-transition metal elements, magnesium and aluminum are most preferred.

[0053] Preferred examples of the positive electrode active material include lithium-containing transition metal oxides such as LiCoO2, LiNiO2, LiMn2O4, LiMnO2, LiNi 1-y Co y O2 (0 < y < 1), LiNi 1-y-z Co y Mn z O2 (0 < y + z < 1) and LiNi 1-y-z Co y Al z O2 (0 < y + z < 1), etc. LiNi1-y-zCo y Mn z O2 (0 < y + z < 0.5) and LiNi 1-y-z Co y Al z O2 (0 < y + z < 0.5) are desirable from the viewpoints of cost and specific capacity. These positive electrode active materials contain a large amount of an alkaline component and thus accelerate the decomposition of the non-aqueous electrolyte and reduce the durability. However, the non-aqueous electrolyte of the present disclosure is resistant to decomposition even when used in combination with these positive electrode active materials.

[0054] The positive electrode active material can be a lithium (Li)-containing transition metal fluoride. The transition metal element can be at least one selected from the group consisting of scandium (Sc), manganese (Mn), iron (Fe), cobalt (Co), nickel (Ni), copper (Cu), and yttrium (Y). Among these transition metal elements, manganese, cobalt, and nickel are most preferred.

[0055] The conductive agent can be used to increase the electronic conductivity of the positive electrode active material layer. Preferred examples of the conductive agent include conductive carbon materials, metal powders, and organic materials. Specific examples include carbon materials such as acetylene black, ketjen black, and graphite, metal powders such as aluminum powder, and organic materials such as phenylene derivatives.

[0056] The binder can be used to ensure good contact between the positive electrode active material and the conductive agent and to increase the adhesion of components such as the positive electrode active material to the surface of the positive electrode current collector. Preferred examples of binders include fluoropolymers and rubber polymers such as polytetrafluoroethylene (PTFE), polyvinylidene fluoride (PVdF), ethylene-propylene-isoprene copolymer, and ethylene-propylene-butadiene copolymer. The binder can be used in combination with a thickener such as carboxymethyl cellulose (CMC) or polyethylene oxide (PEO).

[0057] Negative electrode (anode) The negative electrode is generally composed of a negative electrode current collector such as a metal foil, and optionally, a negative electrode active material layer disposed on the negative electrode current collector.

[0058] The negative electrode current collector can be a metal foil, preferably copper (lithium-free), which is low cost, easily processed, and has good electronic conductivity.

[0059] Typically, the negative electrode comprises carbon, such as graphite or graphene.

[0060] Silicon-based materials can also be used for the negative electrode. A preferred form of silicon is in the form of nanowires, which are preferably present on a support material. The support material can include metals (such as steel) or non-metals (such as carbon).

[0061] The negative electrode may include an active material layer, which, if present, comprises the negative electrode active material and other components, such as a binder, and is generally obtained by mixing the components in a solvent and applying the mixture to a positive electrode current collector, followed by drying and rolling.

[0062] The negative electrode active material is not particularly limited as long as it can store and release lithium ions. Examples of suitable negative electrode active materials include carbon materials, metals, alloys, metal oxides, metal nitrides, and lithium-intercalated carbon and silicon. Examples of carbon materials include natural / artificial graphite and pitch-based carbon fibers. Preferred examples of metals include lithium (Li), silicon (Si), tin (Sn), germanium (Ge), indium (In), gallium (Ga), lithium alloys, silicon alloys, and tin alloys.

[0063] As with the positive electrode, the binder may be a fluoropolymer or a rubber polymer, and is preferably a rubbery polymer such as styrene-butadiene copolymer (SBR). The binder may be used in combination with a thickener.

[0064] Separator A separator is preferably present between the positive electrode and the negative electrode. The separator has insulating properties. The separator may include a porous membrane having ion permeability. Examples of porous membranes include microporous thin films, woven fabrics, and nonwoven fabrics. Suitable materials for the separator are polyolefins such as polyethylene and polypropylene.

[0065] case The battery components are preferably disposed within a protective case.

[0066] The case may comprise any suitable resilient material to provide support to the battery and electrical contact to the device being powered.

[0067] In one embodiment, the case comprises a metallic material, preferably in sheet form, formed into the battery shape. The metallic material preferably includes several portions that are adaptable to be attached together (e.g., by press-fitting) in the assembly of the battery. Preferably, the case comprises an iron / steel-based material.

[0068] In another embodiment, the case comprises a plastic material molded to the shape of the battery. The plastic material preferably comprises several parts that are adaptable to be joined together (e.g., by press-fitting / adhesion) during battery assembly. Preferably, the case comprises a polymer such as polystyrene, polyethylene, polyvinyl chloride, polyvinylidene chloride, or polymonochlorofluoroethylene. The case may also include other additives for the plastic material, such as fillers or plasticizers. In this embodiment in which the case for the battery primarily comprises a plastic material, a portion of the casing may additionally include a conductive / metallic material for establishing electrical contact with a device powered by the battery.

[0069] arrangement The positive and negative electrodes may be wound or stacked together through a separator. Together with a non-aqueous electrolyte, they are contained within an external case. The positive and negative electrodes are electrically connected to the external case at their separate portions.

[0070] Modules / Packs Several / multiple battery cells may be configured into a battery module, where the battery cells may be organized in series and / or parallel, typically housed in a mechanical structure.

[0071] A battery pack can be assembled by connecting multiple modules together in series or parallel. Typically, the battery pack includes additional features such as sensors and controllers, including a battery management system and a thermal management system. The battery pack generally includes a containment housing structure to form the final battery pack product.

[0072] End use The batteries of the present invention, in the form of individual batteries / cells, modules and / or packs (and electrolyte formulations therefor), are intended to be used in one or more of a variety of end products.

[0073] Preferred examples of end products include portable electronic devices such as GPS navigation devices, cameras, laptops, tablets, and mobile phones. Other preferred examples of end products include vehicular devices (as a supply of power for the propulsion system and / or any electrical systems or devices present therein) such as electric bicycles and motorcycles, and automotive applications (including hybrid and pure electric vehicles).

[0074] The invention will now be described with reference to the following non-limiting examples.

[0075] Example 1 - Typical Procedure for Epoxidation of Fluoroalkenes A 1 liter round bottom flask was equipped with a cooled condenser, magnetic stir bar, thermometer and dry ice trap.

[0076] A flask was charged with NaOCl (500 mL, 6-14% active Cl), Aliquat 336 (5 mL, 0.1 mol), and xylene (150 mL, 1.23 mol). The mixture was stirred at 600 rpm and cooled to approximately 5°C, at which point Z-1,3,3,3-tetrafluoropropene (50 g, 0.44 mol) was added dropwise over 20 minutes. The reaction mixture was allowed to gradually warm to room temperature with stirring for 24 hours. After 24 hours, the mixture was transferred to a separatory funnel and allowed to separate. The aqueous layer was discarded, and the organic layer was dried over anhydrous sodium sulfate and filtered to remove the spent drying agent.

[0077] The product was recovered by distillation from a xylene solvent.

[0078] Several batches of material were prepared and each was first concentrated by performing a crude single-stage distillation before combining them for further purification by fractional distillation using a vacuum jacketed distillation column (50 cm*2 cm) equipped with a reflux divider and packed with Pro-pak 0.16 inch square 316 stainless steel distillation packing.

[0079] The reboiler was charged with a mixture containing crude Z-1,3,3,3-tetrafluoropropene epoxide in xylene (251 g). The mixture was refluxed and the system was allowed to equilibrate before collecting the product in nine fractions. Each fraction was analyzed by GC-MS. Fractions 1-4 and 9 were combined to give 60.8 g of product containing 81.8% Z-1,3,3,3-tetrafluoropropene epoxide. Fractions 5-8 were combined to give 63.7 g of product containing 98.7% Z-1,3,3,3-tetrafluoropropene epoxide. [ka] Z-1,3,3,3-tetrafluoropropene epoxide ((2R,3R)-2-fluoro-3-(trifluoromethyl)oxirane): boiling point 54-55°C; MS m / z 130, 111, 82, 80, 69, 63, 60, 51, 47, 45, 33; 19 F NMR(56MHz)δ-70.73(ddd,J 13.0,5.0,2.0Hz,3F),-165.27~-168.36(m,1F).

[0080] Flammability and Safety Tests flash point Flash points were determined according to the ASTM D6450 standard method using a Miniflash FLP / H device from Grabner Instruments. [Table 1]

[0081] Self-extinguishing time The self-extinguishing time was measured with a custom-made device that included an automatically controlled stopwatch connected to an ultraviolet detector. The electrolyte to be tested (500 μL) was applied to a Whatman GF / D (Φ=24 mm) glass microfiber filter. An ignition source was moved under the sample and held in this position for a preset time (1, 5, or 10 seconds) to ignite the sample. Ignition and combustion of the sample was detected using a UV photodetector. The evaluation is based on the burn time / weight of electrolyte [sg -1 ] over the ignition time [s] and extrapolating with a linear regression line to ignition time = 0 s. ·Self-extinguishing time (sg -1 ) is the time required for the sample to stop burning once ignited. [Table 2]

[0082] These measurements demonstrate that compound MEXI-3 has flame retardant properties.

[0083] Electrochemical Testing Drying Prior to testing, MEXI-3 was dried to less than 10 ppm water by treatment with pre-activated Type 4A molecular sieves.

[0084] electrolyte formulation Electrolyte preparation and storage were carried out in an argon-filled glove box (HO and O<0.1 ppm). The base electrolyte was 1 M LiPF in ethylene carbonate:ethyl methyl carbonate (30:70 wt%) with MEXI-3 additive at concentrations of 2, 5, 10, and 30 wt%.

[0085] Cell Chemistry and Structure The performance of each electrolyte formulation was tested in multi-layer pouch cells (2 cells per electrolyte) for 50 cycles. Chemistry 1: Lithium-nickel-cobalt-manganese-oxide (NCM622) cathode and artificial graphite (specific capacity: 350 mAh g -1 ) anode. The areal capacities of NMC622 and graphite are 3.5 mAh cm, respectively. -2 and 4.0mAh cm -2 The N / P ratio reached 115%. Chemistry 2: Lithium-nickel-cobalt-manganese-oxide (NCM622) cathode and SiO x / Graphite (specific capacity: 550mAh g -1 ) Negative electrode: NMC622 and SiO x / graphite areal capacity is 3.5mAh / cm -2 and 4.0mAh cm -2 The N / P ratio reached 115%.

[0086] The test pouch cell had the following characteristics: ·Nominal capacity 240mAh+ / -2% Standard deviation:

[0087] Capacity: ±0.6mAh Coulombic efficiency (CE) 1st cycle: ±0.13% Coulombic efficiency (CE) subsequent cycles: ±0.1% Positive electrode: NMC-622 ·Active material content: 96.4% ·Mass load: 16.7mg cm -2

[0088] Negative electrode: Artificial graphite ·Active material content: 94.8% ·Mass load: 10mg cm -2 Separator: PE (16 μm) + 4 μm Al2O3 Balanced at 4.2V cutoff voltage

[0089] Negative electrode: Artificial graphite + SiO ·Active material content: 94.6% ·Mass load: 6.28mg cm-2 Separator: PE (16 μm) + 4 μm Al2O3 Balanced at 4.2V cutoff voltage

[0090] After assembly, the following fabrication protocol was used. 1. Step charge to 1.5V followed by a 5-hour rest step (wet step at 40°C) 2. CCCV(C / 10, 3.7V(I 限界 : 1 hour) (pre-formation step) 3. Rest step (6 hours) 4. CCCV(C / 10, 4.2V(I 限界 :0.05C)) Rest step (20 min) 5. CC discharge (C / 10, 3.8V), (cell degassing) 6.CC discharge (C / 10, 2.8V)

[0091] Following this formation step, the cells were tested as follows. Rest step (1.5V, 5 hours), CCCV (C / 10, 3.7V (1 hour)) Rest step (6 hours), CCCV(C / 10, 4.2V(I 限界 :0.05C)) Rest step (20 min), CC discharge (C / 10, 3.8 V) Degassing step Discharge (C / 10, 2.8V), rest step (5 hours) CCCV(C / 3, 4.2V(I 限界 :0.05C), rest step (20 min) ·CC discharge (C / 3, 2.8V) 50 cycles or until 50% SOH is reached at 40°C: CCCV(C / 3, 4.2V(I 限界 :0.02C), rest step (20 min) CC discharge (C / 3, 3.0V), rest step (20 min)

[0092] Test results [Table 3] [Table 4]

[0093] Testing results for additive MEXI-3 in each cell chemistry are summarized in Tables 1-2 and Figures 1-2. From this data, it can be seen that the additive in both cell chemistries had a positive impact on cell performance, improving both coulombic efficiency and cycling stability. These results, combined with safety-related studies, demonstrate that the compounds of the present invention simultaneously improved both the safety and performance of energy storage devices containing them. [Brief explanation of the drawings]

[0094] [Figure 1] Test results for the additive ETFMP in each cell chemistry are shown. [Figure 2] Test results for the additive ETFMP in each cell chemistry are shown.

Claims

【Request 1】 【Chemical 1】 or a compound of formula 1: 【Chemistry 2】 wherein each R 1 and R 2 is selected from the group consisting of F, Cl, CF 3 , and C 1 -C 6 alkyl which may be at least partially fluorinated; each R 3 and R 4 is selected from the group consisting of F, Cl, H, CF 3 , and C 1 -C 6 alkyl which may be at least partially fluorinated; and at least one of R 1 -R 4 is F or includes F.

2. 10. The non-aqueous battery electrolyte formulation of claim 1, wherein the non-aqueous battery electrolyte formulation comprises a metal electrolyte salt present in an amount of 0.1 to 20 weight percent, based on the total weight of the non-aqueous battery electrolyte formulation.

3. 3. The non-aqueous battery electrolyte formulation of claim 2, wherein the metal electrolyte salt is a salt of lithium, sodium, magnesium, calcium, lead, zinc, or nickel.

4. The metal electrolyte salt is lithium hexafluorophosphate (LiPF 6 ), lithium hexafluoroarsenate monohydrate (LiAsF 6 ), lithium perchlorate (LiClO 4 ), lithium tetrafluoroborate (LiBF 4 ), lithium triflate (LiSO 3 CF3), lithium bis(fluorosulfonyl)imide (Li(FSO 2 ) 2 N) and lithium bis(trifluoromethanesulfonyl)imide (Li(CF 3 SO 2 ) 2 4. The non-aqueous battery electrolyte formulation of claim 3, wherein the salt of lithium is selected from the group comprising:

5. 5. The non-aqueous battery electrolyte formulation of claim 1, wherein the non-aqueous battery electrolyte formulation comprises an additional solvent in an amount of 0.1% to 99.9% by weight of the liquid component of the non-aqueous battery electrolyte formulation.

6. 6. The non-aqueous battery electrolyte formulation of claim 5, wherein the additional solvent is selected from the group comprising fluoroethylene carbonate (FEC), propylene carbonate (PC), ethylene carbonate (EC), or methyl ethyl carbonate (EMC).

7. A compound of formula 1: 【Chemistry 3】 wherein each R 1 and R 2 is selected from the group consisting of F, Cl, CF 3 , and C 1 -C 6 alkyl which may be at least partially fluorinated; each R 3 and R 4 is selected from the group consisting of F, Cl, H, CF 3 , and C 1 -C 6 alkyl which may be at least partially fluorinated; and at least one of R 1 -R 4 is F or includes F.

8. Use of a non-aqueous battery electrolyte formulation according to any one of claims 1 to 7 in a battery.