Electrode for lithium-ion battery and method for preparing same

The use of a linear SEBS copolymer with defined properties as a binder in lithium-ion battery electrodes addresses adhesion and mechanical stability issues, enhancing specific capacity and performance.

JP7744362B2Active Publication Date: 2025-09-25DYNASOL ELASTOMEROS
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Patent Information

Application Number
JP2022568504
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-13
Filing Date
2021-05-12
Publication Date
2025-09-25
Estimated Expiration
2041-05-12

AI Technical Summary

Technical Problem

Existing lithium-ion battery technologies face challenges in achieving optimal performance and specific capacity due to the limitations of conventional binders, particularly in the adhesion, mechanical properties, and thermal stability of electrodes.

Method used

The use of a linear styrene-ethylene/butylene-styrene (SEBS) copolymer with specific melt flow rate, molecular weight, and styrene content as a binder in the electrode active layer, which enhances adhesion to current collectors and improves mechanical properties, resulting in better performing batteries.

Benefits of technology

The SEBS copolymer improves the specific capacity and structural integrity of lithium-ion battery electrodes, leading to enhanced performance and stability, especially when used in cathodes and anodes.

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Abstract

An electrode for a lithium-ion battery is provided, which has an active layer containing a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder. The SEBS copolymer as a binder is characterized by a melt flow rate (MFR) of 4 to 220 g / 10 min measured at 230°C under a 2.16 kg load, a molecular weight of less than 100,000 g / mol, particularly 50,000 g / mol to 100,000 g / mol, and a styrene content of 10 to 20 wt%. An electrode, which can be a cathode or anode, and a method for preparing a Li-ion battery including such an electrode are also provided.
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Description

[Technical Field]

[0001] [Related Applications] This application claims the benefit of European Patent Application No. 20382398.4, filed May 13, 2020.

[0002] [Technical field] The present disclosure relates to the field of rechargeable batteries. In particular, the present disclosure relates to an electrode containing a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder, and a Li-ion battery including the electrode. More specifically, the present disclosure relates to a cathode, an anode, and methods for preparing the same. [Background technology]

[0003] The increasing need for mobility, sensing, and interconnectivity is driving the need for low-cost, environmentally friendly energy storage systems.

[0004] Lithium-ion batteries have a higher volumetric energy density (Wh L) than other conventional electrochemical batteries. -1 ) and gravimetric energy density (Wh g -1 ), making them an advantageous technology for this purpose. Furthermore, they also exhibit several attractive features, such as the absence of memory effect, low self-discharge, many charge and discharge cycles, and high energy efficiency in the energy conversion process. Lithium-ion batteries are well suited for integration into portable devices (smartphones, laptops, tablets) and smart sensors / actuators that are highly relevant to the "Internet of Things" (IoT), contributing to the rapid implementation of the concepts of smart homes, smart cities, and point-of-care biomedical devices. They are also a reliable technology for integration in electric and hybrid vehicles, off-grid power systems in isolated areas, and uninterruptible power supplies (UPS).

[0005] Cathode for lithium-ion batteries is prepared from a slurry, consisting of a mixture of active material, binder, conductive additive, and solvent, coated onto a metal current collector substrate (aluminum).

[0006] One possible polymer that can be used as a binder belongs to the styrene block copolymer (SBC) family. Styrene-butadiene-styrene (SBS) copolymers are widely used in industry because they maintain high elongation and exhibit abrasion resistance, durability, and chemical resistance. Styrene-ethylene / butylene-styrene (SEBS) copolymers, obtained by hydrogenation of SBS polymers, have higher resistance to temperature and ultraviolet light and improved elastic properties. Furthermore, SEBS copolymers are non-toxic and have no cytotoxic effects, even after natural aging.

[0007] Recent studies have shown that SEBS is a very attractive polymer binder for Li-ion batteries (see Gonticalves, R. et al., "Poly(styrene-butene / ethylene-styrene): A New Polymer Binder for High-Performance Printable Lithium-Ion Battery Electrodes," ACS Applied Energy Materials, 2018, Vol. 1, pp. 3331-3341), where the complete battery was assembled with screen-printed electrodes (both anode and cathode). The performance of the printed cathode battery was evaluated, achieving a yield of 137 mAh g for different cycle numbers. -1 (C / 5) to 52mAh g -1 The SEBS-based ink formulated for screen printing showed a high delivery capacity of (5C). The results also demonstrate that the SEBS-based polymer binder provides a better interfacial structure than the commonly used PVDF polymer binder. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] (See International Search Report) [Non-patent literature]

[0009] [Non-Patent Document 1] (See list of citations at end of this specification) Summary of the Invention

[0010] The present inventors have discovered that by using a linear styrene-ethylene / butylene-styrene (SEBS) copolymer, which has a high melt flow rate, a relatively low molecular weight and a styrene content, as a binder in the active layer of an electrode (either the cathode, the anode, or both), batteries with better performance, and in particular improved specific capacity, can be produced.

[0011] Thus, a first aspect of the present invention provides: an electrode active material; with conductive additives; - Melt flow rate (MFR) measured at 230°C and 2.16 kg load from 4 to 220 g / 10 min; - molecular weight less than 100,000 g / mol, in particular from 50,000 g / mol to 100,000 g / mol; - styrene content of 10 to 20% by weight; a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder; The present invention relates to an electrode for a lithium ion battery comprising an active layer comprising:

[0012] A second aspect of the present invention relates to a method for preparing the above-mentioned electrode, the method comprising the steps of: a) obtaining a slurry, the slurry comprising: - Melt flow rate (MFR) measured at 230°C and 2.16 kg load of 4 to 220 g / 10 min, e.g., 4 g / 10 min, 10 g / 10 min, 30 g / 10 min, 50 g / 10 min, 100 g / 10 min, or 150 g / 10 min; - a molecular weight of less than 100,000 g / mol, in particular from 50,000 g / mol to 100,000 g / mol, for example 70,000 g / mol, or 75,000 g / mol, or 80,000 g / mol; - a styrene content of 10 to 20% by weight, for example 15% by weight; a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder; an electrode active material; with conductive additives; with a suitable solvent; obtaining a slurry comprising: b) applying the slurry to a current collector; c) drying the applied slurry to form an electrode active layer on the current collector; A method for preparing the electrode described above, comprising:

[0013] A third aspect of the present invention relates to a Li-ion battery comprising a cathode, an anode, a separator, and a suitable electrolyte interposed between the cathode and the anode, wherein either the cathode or the anode, or both, are as described above. [Brief explanation of the drawings]

[0014] [Figure 1]Rheological properties of a sample made with SEBS C-H6180X (triangles; Example 1), a sample made with SEBS C-H6110 (squares; Comparative Example 1), and a sample made with SBS C-718 prepared using Method 1 (circles; Comparative Example 2) are shown. a) Viscosity response to steady shear at 0.5 s-1, b) Time evolution of storage modulus G' after cessation of steady shear, c) Mechanical spectra recorded at the end of the time evolution (G': open symbols; G'': closed symbols), d) Stress dependence of G' (open symbols) and G'' (closed symbols). Symbols represent average values ​​from tests performed at four different sample thicknesses for each ink. [Figure 1A] Continued from Figure 1 (c, d). [Figure 2] Rheological properties of sample SEBS C-H6110 / M3 at different thicknesses of 800 μm (left-pointing triangles), 817 μm (circles), 820 μm (diamonds), and 980 μm (upward-pointing triangles). a) Mechanical spectra recorded at the end of the time evolution (G´: empty symbols; G´´: filled symbols), b) Oscillatory strain response to a large amplitude oscillatory stress with a frequency of 1 Hz. [Figure 3] a) Time dependence of shear storage modulus G´ of ink SEBS C-H6110 / M1 (squares), ink SEBS C-H6110 / M2 (circles), and ink SEBS C-H6110 / M3 (triangles) measured after 60 seconds of steady shear cessation at a shear rate of 0.5 s-1. b) Mechanical spectra (G´: open symbols, G´´: closed symbols) of ink SEBS C-H6110 / M1 (triangles), ink SEBS C-H6110 / M2 (circles), and ink SEBS C-H6110 / M3 (squares). c) Measurements of samples SEBS C-H6110 / M1 (triangles), ink SEBS C-H6110 / M2 (circles), and SEBS C-H6110 / M3 during large amplitude oscillatory shear (LAOS) stress sweeps. Figure 1 shows the stress dependence of the storage (G´: open symbols) and loss (G´´: closed symbols) moduli of C-H6110 / M3 (squares). [Figure 3A] Continued from Figure 3(c). [Figure 4]Figure 1 shows SEM surface images of cathodes with different polymer binders and methods: a) SBS C-718 / M1, b) SEBS C-H6180X / M1, c) SEBS C-H6110 / M1, d) SEBS C-H6110 / M2, and e) SEBS C-H6110 / M3. [Figure 5] a) Fifth charge / discharge cycle profiles at C5 and C / 5 rates, b) rate performance of discharge profiles at C rates from 5C to C / 5, c) cycle life stability at C and 2C rates, and d) coulombic efficiency as a function of cycle number. All measurements were performed at room temperature for all printed cathodes prepared with different polymers and dispersion methods (represented by squares for sample SBS C-718 / M1, circles for sample SEBS C-H6180X / M1, triangles for sample SEBS C-H6110 / M1, stars for SEBS C-H6110 / M2, and diamonds for sample SEBS C-H6110 / M3). [Figure 5A] Continued from Figure 5 (c, d). [Figure 6] a) EIS results and corresponding equivalent circuits after cycling, and b) differential capacity (dQ / dV) results for all printed cathodes prepared by different polymers and dispersion methods are shown (represented by squares for sample SBS C-718 / M1, circles for sample SEBS C-H6180X / M1, triangles for sample SEBS C-H6110 / M1, stars for SEBS C-H6110 / M2, and diamonds for sample SEBS C-H6110 / M3). DETAILED DESCRIPTION OF THE INVENTION

[0015] All terms used herein in this application are to be understood in their ordinary meaning as known in the art unless otherwise specified. Other more specific definitions of terms used in this application are set forth below and are intended to be applied uniformly throughout the specification and claims unless a specifically stated definition provides a broader definition.

[0016] As used herein, the term "C-rate" refers to a measure of the rate at which a battery is discharged relative to its maximum capacity. A 1C rate means that the discharge current will discharge the entire battery in 1 hour.

[0017] The term "specific capacity" refers to the amount of charge stored and delivered (A·h) relative to the weight of electrode active material, typically expressed in mAh / g, where g relates to g of active material.

[0018] The term "weight percent (wt%)" of an electrode component in a slurry obtained to prepare the active layer of the electrode refers to the proportion of each component relative to the total weight of the electrode active layer, unless otherwise specified.

[0019] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the content clearly dictates otherwise.

[0020] As described above, a first aspect of the present disclosure comprises a cathode active material; a conductive additive; and a melt flow rate (MFR) measured at 230°C and a 2.16 kg load of 4 to 220 g / 10 min, e.g., 4 g / 10 min, 10 g / 10 min, 30 g / 10 min, 50 g / 10 min, 100 g / 10 min, or 150 g / 10 min; a molecular weight of less than 100,000 g / mol, in particular 50,000 g / mol to 100,000 g / mol, e.g., 70,000 g / mol, or 75,000 g / mol, or 80,000 g / mol; and a styrene content of 10 to 20 wt%, e.g., 15 wt%; The present invention relates to an electrode for a lithium ion battery comprising an active layer comprising:

[0021] The SEBS copolymers of the present disclosure exhibit particularly high adhesion to current collectors, excellent mechanical properties, and good thermal stability, resulting in better performing batteries, especially when used as binders in cathodes and / or anodes for lithium-ion batteries.

[0022] The linear SEBS copolymers used in the present disclosure can be prepared by a process comprising the following steps: a) Linear SBS - Li + sequential polymerization of styrene (S), butadiene (B) and styrene (S) in a non-polar solvent (such as cyclohexane, n-hexane and mixtures thereof) using an anionic initiator such as n-butyllithium in the presence of a polar modifier such as tetrahydrofuran or ditetrahydrofurylpropane, which modifies the reaction mode of butadiene by generating 1,2 vinyl structures in the chain, to obtain a copolymer; b) The resulting linear SBS - Li + reacting the copolymer with a protic substance such as butylhydroxytoluene (BHT) or methanol to obtain a linear SBS polymer; d) hydrogenating the central butadiene block (B) of SBS in the presence of hydrogen and a titanium catalyst to convert it into an ethylene / butylene (EB) block and obtain a linear styrene-b-ethylene / butylene-b-styrene block copolymer (SEBS).

[0023] In step a), in the absence of a polar modifier, the polybutadiene polymer block is primarily composed of 1,4 structures and a small proportion of 1,2 vinyl structures (the latter amounting to about 9-12 wt % relative to the added butadiene). Conversely, in the presence of a polar modifier, the proportion of 1,2 vinyl structures increases to a level of about 50-65 wt %. Furthermore, the amount of styrene used in the polymerization reaction is such that the styrene content in the final SEBS is 10-20 wt %, e.g., 15 wt %, and the polymerization reaction is carried out so that the total molecular weight of the SEBS copolymer is 100,000 g / mol or less, particularly 50,000 to 100,000 g / mol, e.g., 70,000 g / mol, 75,000 g / mol, or 80,000 g / mol. Since the MFR decreases with increasing MW, once the styrene and vinyl contents are stabilized, the MW is adjusted to obtain the required MFR of 4 to 220 g / 10 min.

[0024] The molecular weight of the polystyrene block, polyethylene / butylene block and the molecular weight of SEBS are controlled by the ratio and amount of monomers styrene and / or butadiene to moles of initiator during the anionic polymerization reaction. Molecular weights are determined by gel permeation chromatography (GPC) using Mark-Houwink constants k=0.0003253 and α=0.693.

[0025] Thus, in one embodiment, the linear SEBS copolymer is - Melt flow rate (MFR) measured at 230°C and 2.16 kg load of 4 to 220 g / 10 min, e.g., 4 g / 10 min, 10 g / 10 min, 30 g / 10 min, 50 g / 10 min, 100 g / 10 min, or 150 g / 10 min; - a molecular weight of less than 100,000 g / mol, in particular from 50,000 g / mol to 100,000 g / mol, for example 70,000 g / mol, or 75,000 g / mol, or 80,000 g / mol; a styrene content of 10 to 20% by weight, for example 15% by weight; and a vinyl content of 50 to 65% by weight, for example 60 or 62% by weight, The present invention is characterized by having the following.

[0026] In another embodiment, optionally in combination with one or more features of the specific embodiments defined above, the linear SEBS described above is further characterized in that the polystyrene block (S) has a molecular weight of 9,000 g / mol or less.

[0027] Examples of commercially available SEBS having the above characteristics are Calprene C-H6180X, Calprene C-H6181X, and Calprene C-H6182X manufactured by Dynasol Group, which have the properties shown in Table 1 below.

[0028] [Table 1]

[0029] The linear SEBS copolymers disclosed above are used as binders in the preparation of lithium ion battery electrodes of the present invention.

[0030] A lithium-ion battery electrode is obtained by forming an electrode active layer on a current collector, the electrode active layer including an electrode active material, a conductive additive, and the linear SEBS copolymer disclosed hereinabove, where the electrode active material can be a cathode active material or an anode active material.

[0031] The electrode active layer is formed by applying a slurry composition containing the electrode active material of the present disclosure, a conductive additive, and a binder onto a current collector, and then drying the slurry composition, i.e., by evaporating and removing the solvent.

[0032] The method for applying (spraying) the slurry composition onto the current collector is not particularly limited, and examples of the method include screen printing, doctor blade, dipping, reverse roll, direct roll, gravure, extrusion, comma direct coating, slide die coating, and brush coating.

[0033] Examples of drying methods include drying with warm air, hot air, or low-humidity air, vacuum drying, and drying by irradiation with (far) infrared rays, electron beams, or the like. The drying time is usually 1 to 60 minutes. The drying temperature is usually 40°C to 180°C, particularly 60°C to 80°C, for example, 70°C. The electrode active material layer can be formed by repeatedly applying the slurry composition multiple times and drying it.

[0034] Examples of current collector materials include metals, carbon, and conductive polymers. Metals are preferably used. Examples of current collector metals include aluminum, platinum, nickel, tantalum, titanium, stainless steel, copper, and alloys.

[0035] Among these metals, copper, aluminum, or an aluminum alloy is preferably used from the viewpoint of electrical conductivity and voltage resistance.

[0036] The thickness of the current collector is preferably from 5 to 100 pm, more preferably from 8 to 70 μm, and even more preferably from 10 to 50 μm.

[0037] The slurry composition can be obtained by mixing an electrode active material, a conductive additive, the linear SEBS copolymer disclosed hereinabove, and a solvent.

[0038] Examples of suitable solvents include, but are not limited to, cyclopentyl methyl ether (CPME), cyclohexane, n-hexane, methylcyclohexane, benzene, toluene, tetrahydrofuran, cyclopentane, ethylbenzene, n-heptane, 1-hexene, n-octane, n-pentane, and o-xylene.

[0039] CPME is considered a "green solvent" and is often recommended as an alternative to toxic solvents due to its low acute toxicity and negative mutagenicity. CPME is also easily recoverable due to its low solubility in water, and its boiling point of 106°C requires low levels of energy for vaporization. Thus, in certain embodiments, the solvent is CPME. The green approach aims to reduce the environmental impact associated with the use of toxic solvents and reduce resource waste by recycling materials.

[0040] "Cathode" In one embodiment, optionally in combination with one or more features of the specific embodiments defined above, the electrode of the present invention is a cathode, and the electrode active material is a cathode active material.

[0041] The binder promotes good physical adhesion between the active material and the conductive additive, improves the mechanical stability and flexibility of the electrode, and enables high adhesion of the cathode slurry to the substrate. It also contributes to the formation of a structural network with electrical pathways, improving lithium ion diffusion and electron transport.

[0042] In one embodiment, optionally in combination with one or more features of the specific embodiments defined above, the content of the binder in the cathode active layer is 2 wt % to 25 wt %, for example 10 wt %, based on the total weight of the cathode active layer.

[0043] The cathode active material acts as a lithium ion reservoir. Examples of cathode active materials include carbon-coated lithium iron phosphate (C-LiFePO4), lithium cobalt oxide (LiCoO2), lithium manganese oxide (LiMn2O4), lithium cobalt phosphate (LiCoPO4), lithium manganese phosphate (LiMnPO4), lithium nickel dioxide (LiNiO2), and lithium nickel cobalt oxide [LiNi 1-x Co xO2 (0.2≦x≦0.5)], lithium nickel manganese cobalt oxide (LiNi 1 / 3 Mn 1 / 3 Co 1 / 3 O2), lithium nickel manganese oxide (LiNi 0.5 Mn 0.5 Among various active materials, C-LiFePO4 with olivine structure has a high theoretical storage capacity (170 mAh.g -1 ), it is considered one of the most relevant materials. Furthermore, it exhibits excellent thermal and chemical stability and is an environmentally "friendly" low-cost material due to the absence of heavy and toxic metals in its composition.

[0044] Typically, the amount of cathode active material in the cathode active layer is from 45 wt % to 95 wt %, for example, 80 wt %, based on the total weight of the cathode active layer.

[0045] The conductive additive improves the conductivity of the active material and increases the conductivity of the cathode. Examples of the conductive additive include, but are not limited to, carbon black, such as carbon black C-NERGY™ Super C45 (hereinafter simply referred to as C45; Imerys G&C), graphite, and carbon fiber. In particular, the conductive additive is graphite.

[0046] Typically, the amount of the conductive additive in the cathode active layer is from 3 wt % to 30 wt %, for example 10 wt %, based on the total weight of the cathode active layer.

[0047] "anode" In another embodiment, the electrode of the present invention is an anode. In addition to the linear SEBS copolymer defined above used as a binder, the active layer then further comprises an anode active material and a conductive additive.

[0048] In one embodiment, optionally in combination with one or more features of the specific embodiments defined above, the content of the binder in the anode active layer is from 2 wt % to 25 wt %, for example, 10 wt %, based on the total weight of the anode active layer.

[0049] Examples of anode active materials include, but are not limited to, low-crystalline carbon (amorphous carbon) such as graphitizable carbon, non-graphitizable carbon, and pyrolytic carbon, graphite (natural graphite, artificial graphite), alloy materials formed with tin or silicon, and oxides such as silicon oxide, tin oxide, or lithium titanate.

[0050] Typically, the amount of the anode active material in the anode active layer is 45% to 95% by weight, based on the total weight of the anode active layer.

[0051] Examples of conductive additives include, but are not limited to, carbon black, such as carbon black C-NERGY™ Super C45 (hereinafter simply referred to as C45; Imerys G&C), and carbon fiber. In particular, the conductive additive is carbon black.

[0052] Typically, the amount of the conductive additive in the anode active layer is from 3 wt % to 30 wt %, for example, 10 wt %, based on the total weight of the anode active layer.

[0053] "Preparation of electrodes" As mentioned above, the second aspect of the present invention is a) obtaining a slurry, - Melt flow rate (MFR) measured at 230°C and 2.16 kg load of 4 to 220 g / 10 min, e.g., 4 g / 10 min, 10 g / 10 min, 30 g / 10 min, 50 g / 10 min, 100 g / 10 min, or 150 g / 10 min; - a molecular weight of less than 100,000 g / mol, in particular from 50,000 g / mol to 100,000 g / mol, for example 70,000 g / mol, or 75,000 g / mol, or 80,000 g / mol; - a styrene content of 10 to 20% by weight, for example 15% by weight; a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder; an electrode active material; a conductive additive; and a suitable solvent; obtaining a slurry comprising: b) applying the slurry to a current collector; c) drying the applied slurry to form an electrode active layer on the current collector; The present invention relates to a method for preparing the above electrode, comprising:

[0054] In particular, the linear SEBS has a vinyl content of 50 to 65% by weight, for example 60 or 62% by weight.

[0055] All particular embodiments of the electrode of the present invention are also particular embodiments of the method of the present invention, as long as the electrode is used in the method.

[0056] In one embodiment, optionally in combination with one or more features of the specific embodiments defined above, the electrode is a cathode and the electrode active material is a cathode active material.

[0057] The present inventors have also recognized that by practicing the cathode preparation methods disclosed herein, a particular order for incorporating the different components to form the aqueous slurry that serves to obtain the cathode active layer results in batteries with even better specific capacity.

[0058] Thus, in a particular embodiment of the method for preparing a cathode, optionally in combination with one or more features of the particular embodiments defined above, the slurry of step a) comprises: - dissolving the SEBS copolymer in a solvent (in particular CPME) under stirring to obtain a copolymer solution; - sequentially adding a cathode active material and a conductive additive to the stirred copolymer solution to obtain a suspension; - subjecting the obtained suspension to an agitation process to obtain a slurry; is formed by

[0059] As shown in the examples, samples prepared by this method exhibit higher charge / discharge specific capacity and slightly lower capacity fade compared to samples prepared by other dispersion methods.

[0060] Without wishing to be bound by theory, it is believed that optimized cathode performance may be related to improved dispersion of the cathode components, as assessed by the rheological properties of the ink used to prepare the cathode and morphological characterization of the printed cathode.

[0061] The cathodes obtainable by the method defined above also form part of the invention. All particular embodiments of the method are also particular embodiments of the cathodes obtainable by said method.

[0062] In another embodiment, optionally in combination with one or more features of the specific embodiments defined above, the electrode is an anode and the electrode active material is an anode active material.

[0063] In another embodiment, optionally in combination with one or more features of the specific embodiments defined above, in the method for preparing an electrode disclosed above, step b) is carried out by screen printing.

[0064] "Lithium-ion battery" The electrodes defined above can be used in the manufacture of lithium ion batteries. Thus, as mentioned above, also forming part of the present invention is a Li-ion battery comprising a cathode, an anode, a separator, and a suitable electrolyte interposed between the cathode and the anode, wherein either the cathode or the anode, or both, are as defined above, i.e., comprise a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as defined above.

[0065] An even greater improvement in specific capacity is obtained when both the cathode and anode active layers contain SEBS as defined herein as a binder, and this improvement is even greater when the separator also contains the aforementioned SEBS as a binder.

[0066] Thus, in certain embodiments, the separator also comprises SEBS as defined above.

[0067] Examples of separators include microporous films or nonwoven fabrics containing polyolefin resins, such as polyethylene or polypropylene or SEBS / polyolefin compounds, or aromatic polyamide resins; and Examples include porous resin coatings containing inorganic ceramic powders and immersed in an electrolyte (an organic solvent containing a lithium salt).

[0068] In a more specific embodiment, the separator comprises a polyolefin resin and SEBS, as defined above. Nonwoven fabrics made from SEBS / polyolefin compounds have the advantage of providing the separator with flexibility as needed. Furthermore, these nonwoven fabrics can be manufactured with filaments of different diameters and at different thicknesses to achieve the desired porosity. Thus, the SEBS provides the separator with flexibility and durability.

[0069] The thickness of the separator is preferably 0.5 to 40 μm, more preferably 1 to 30 μm, and even more preferably 1 to 25 μm, from the viewpoints of reducing the resistance caused by the separator in the lithium ion secondary battery and achieving excellent workability when manufacturing a lithium ion secondary battery having a porosity of 40 to 60%.

[0070] Examples of electrolytes include solutions obtained by dissolving a lithium salt in a non-aqueous solvent. Examples of lithium salts include LiPF, LiAsF, LiBF, LiSbF, LiAlCl, LiClO, CFSOLi, CFSOLi, CFCOLi, (CFCO)NLi, (CFSO)NLi, (CFSO)NLi, and mixtures thereof. In particular, the lithium salt is selected from LiPF, LiClO, CFSOLi, and mixtures thereof. The amount of lithium salt is typically 1 to 30% by weight, particularly 5 to 20% by weight, based on the weight of the electrolyte.

[0071] Examples of solvents used in the electrolyte include alkyl carbonates such as dimethyl carbonate (DMC), ethylene carbonate (EC), diethyl carbonate (DEC), propylene carbonate (PC), butylene carbonate (BC), or methyl ethyl carbonate (MEC); esters such as g-butyrolactone or methyl formate; ethers such as 1,2-dimethoxyethane or tetrahydrofuran; sulfur-containing compounds such as sulfolane or dimethyl sulfoxide; and mixtures thereof. In particular, the solvent is selected from dimethyl carbonate, ethylene carbonate, propylene carbonate, diethyl carbonate, methyl ethyl carbonate, and mixtures thereof.

[0072] A lithium ion secondary battery is produced by stacking a negative electrode and a positive electrode with a separator between them, placing the resulting product in a battery container, injecting an electrolyte into the battery container, and sealing the opening of the battery container.

[0073] Throughout the specification and claims, the word "comprise" and variations of that word are not intended to exclude other technical features, additives, components, or steps. Furthermore, the word "comprise" encompasses the case of "consisting of."

[0074] Furthermore, the present invention includes all possible combinations of particular and preferred embodiments described herein.

[0075] The following examples and figures are offered by way of illustration and are not intended to be limitations of the present invention. [Example]

[0076] 1.Material C-LiFePO4 (C-LFP) was used as the active material and was obtained from Phostech Lithium. Carbon black particles (Super P-C45) were used as the conductive additive and were obtained from Timcal Graphite & Carbon. Styrene-butadiene-styrene (SBS Calprene C-718; simply referred to as C-718) and styrene-ethylene-butylene-styrene (SEBS Calprene C-H6180X and SEBS Calprene C-H6110), as supplied by Dynasol, were used as polymer binders (Table 2). Cyclopentyl methyl ether (CPME), an environmentally friendly solvent, was obtained from Carlo Erba. 1 M lithium hexafluorophosphate (LiPF6) in a 1:1 volume / volume solution of ethylene carbonate (EC) and dimethyl carbonate (DMC) (Solvionic) was used as the electrolyte. All reagents and materials were used as received.

[0077] [Table 2]

[0078] 2. Cathode Preparation 2.1 Cathode Ink Formulation Several ink cathode formulations were prepared by mixing the active material (C-LFP), polymer binder, and conductive additive (Super P-C45) with CPME as the solvent. The following copolymers were used as the polymer binder: SBS C-718, SEBS C-H6180X, and SEBS C-H6110.

[0079] The following relative amounts of solid components were used: 80% active material, 10% polymer binder, and 10% conductive additive. The total solids content, i.e., the sum of the active material, polymer binder, and conductive additive, was 40% by weight of the ink cathode formulation. Therefore, the polymer binder content was 6% by weight of the ink cathode formulation.

[0080] 2.2 Description of cathode preparation method Three different methods were evaluated to prepare the ink.

[0081] a) Method 1 First, to prepare a binder solution with a copolymer concentration of 6 wt%, the copolymer used as the binder was weighed and dissolved in CPME with magnetic stirring (1000 rpm) for 30 minutes at room temperature. Next, the C-LFP active material and C45 conductive additive were weighed, subjected to a dry stirring process, and thoroughly mixed by hand. The dry mixture was then added to the copolymer solution to reach a solids fraction of 3.5 mL of solvent + 1.86 solids, where the polymer weight was 0.19 g. The resulting ink was then subjected to a new stirring process (1000 rpm) at room temperature for 1 hour and 30 minutes. The now paste-like ink was placed in an ultrasonic bath (ATM40-3LCD) for 1 hour, then returned to the stirring plate (1000 rpm) for a final stirring process, also at room temperature, for 30 minutes.

[0082] b) Method 2 Method 2 consisted of preparing a dry mix of the active and conductive additives, similar to Method 1. CPME was then added to the dry mix, and the resulting suspension was continuously stirred (1000 rpm) at room temperature for 1 hour and 30 minutes. The copolymer was then added to the suspension, and further stirred (1000 rpm) for 30 minutes at room temperature. Immediately thereafter, the ink was placed in an ultrasonic bath for 1 hour, then returned to the stir plate (1000 rpm) for a final stirring process, also at room temperature for 30 minutes.

[0083] c) Method 3 This method did not use a dry mixing process. Preparation began by dissolving the polymer in the CPME solvent using magnetic stirring (1000 rpm) at room temperature for 30 minutes to obtain a copolymer solution. The C-LFP active material and C45 conductive additive were then added sequentially to the stirred copolymer solution. The resulting suspension underwent a continuous stirring process (1000 rpm) at room temperature for 1 hour and 30 minutes, followed by ultrasonic treatment for 1 hour. The ink was then returned to the stir plate (1000 rpm) for another 30 minutes of stirring, also at room temperature.

[0084] It is important to note that the samples are identified as POL / MX, where POL indicates the polymer used by its acronym and type (SBS C-718, SEBS C-H6180X, or SEBS C-H6110), and MX refers to the experimental preparation method, where X identifies the method number used (1, 2, or 3).

[0085] 2.3 Cathode electrode fabrication The ink was printed by screen printing using a stainless steel manual press. An adjustable substrate holder allowed for adjustment in the x, y, and z axes. A frame held the screen mesh stable to ensure the same optimal distance of 10 mm between the mesh and the substrate. The mesh was 65 thread cm with a square-edged mesh opening of 102 μm and a thread diameter of 52 μm. -1 The cathode electrode was composed of a polyester mesh. A constant force of 17 N and a 45° angle were applied between the squeegee and the printing substrate. An aluminum substrate was used for printing the cathode electrode, which was then dried in a conventional oven (Selecta, 2000208) in an air atmosphere at 60 °C for 20 min (solvent evaporation). The cathode electrode was approximately 24 ± 3 μm thick, and the average porosity measured by glass pycnometer was 70 ± 3%.

[0086] 3. Ink Characterization A constant volume (1.5 mL) of sample was loaded into a stress-controlled rotational rheometer (ARG2, TA Instruments) equipped with a 40 mm diameter plate coated with sandpaper to limit wall slippage. An automatic gap setting protocol with a constant plate movement speed from the back-off distance to the sample thickness was used to generate similar flow histories during sample loading. To avoid solvent loss during testing, the shear geometry was tapped with water. A new sample was loaded into the rheometer for each thickness tested. A conditioning step (0.5 s -1 A steady shear (at 100 Hz) was first applied to induce the same shear history for each sample. The duration of the step was 60 seconds to ensure steady-shear viscosity readings for all samples. The structural recovery of the samples after flow cessation was then tracked by recording both the storage modulus (G´) and loss modulus (G´´) under 0.01% small-amplitude oscillatory shear (SAOS) at 1 Hz. After equilibrium was reached, mechanical spectra were recorded by sweeping the strain from 100 Hz to 0.01 Hz at 0.03% SAOS. Finally, the sample response to large-amplitude oscillatory shear (LAOS) was measured by sweeping the stress at a constant frequency of 1 Hz and recording the fundamental components (G´ and G´´) of the cyclic strain response.

[0087] 4. Cathode Characterization The morphology of the cathode was evaluated by scanning electron microscopy (SEM) using a NanoSEM-FEI Nova 200 instrument at different magnifications (25000x and 120000x) and an accelerating voltage of 10 kV.

[0088] The adhesion between the cathode and the current collector, as well as the adhesion and flexibility of the cathode film, were evaluated using a homemade "bending tester" equipped with metal rods of different diameters, ranging from 10.0 mm to 1.5 mm. Three measurements were performed on each metal rod, as described in Goren A et al. (2015).

[0089] 5. Cell Battery Assembly and Characterization The battery assembly was performed in a Li / C-LFP Swagelok-type half-cell assembled in a home-made argon-filled glove box. A Whatman glass microfiber disk (10 mm diameter and grade GF / A) soaked in electrolyte was used as a separator and placed between metallic lithium (0.75 mm thick, 8 mm diameter, and 99.9% purity) and the previously prepared printed cathode (8 mm diameter). The charge / discharge cycle of the half-cell was tested using a Landt CT2001A instrument. The cycle was performed from C / 5 to 5C (C = 170 mA.g). -1 ) at room temperature in the voltage range of 2.5 to 4.2 V. Electrochemical impedance spectroscopy (EIS) was performed using an Autolab PGSTAT12 instrument in the frequency range of 1 MHz to 10 mHz with an amplitude of 10 mV.

[0090] Example 1 and Comparative Examples 1 and 2. Rheological properties of inks - effect of different polymer types

[0091] To evaluate the effect of the copolymer's chemical structure on the dispersion quality of the active and conductive additives in the ink (slurry), samples formulated with SEBS C-H6180X (Example 1), SEBS C-H6110 (Comparative Example 1), and SBS C-718 (Comparative Example 2) were prepared using Method 1. Figure 1 shows the rheological statistics calculated from experiments conducted using different thicknesses for each type of ink.

[0092] All formulations tested show qualitative rheological similarities (see Figure 1). Quantitative differences between the inks are evident in Figure 1, suggesting that the type of copolymer influences the structure of inks prepared in a similar manner.

[0093] Table 3 shows the rheological parameters extracted from the data displayed in Figure 1: 0.5s -1 the steady-state viscosity (η) for a given shear rate, the elastic shear modulus at structural equilibrium (G0), the critical strain γc for the onset of nonlinear behavior (G') at its plateau value Gp 95% of the original strain), yield stress σ Y (the stress at which G´ = G´´, signaling the onset of flow) and G p / G´´ max

[0094] [Table 3]

[0095] The steady shear viscosities measured during preshear are significantly different, as shown in Table 3, which summarizes the mean values ​​and corresponding errors of selected rheological parameters. As can be seen in Figure 1b, the two inks formulated with SEBS (Example 1 and Comparative Example 1) exhibit faster structural buildup than the ink prepared with SBS C-718 (Comparative Example 2). The latter exhibits greater elasticity, as indicated by the larger values ​​reported in Table 3 for G, the storage shear modulus measured at 1 Hz in the mechanical spectra plotted in Figure 1c. As discussed above in the section discussing the influence of dispersion method on ink structure, both longer structural buildup and greater elasticity indicate a more open fractal flow network of particles. Thus, SBS C-718 promotes better dispersion compared to other SEBS polymers, as verified by the higher elastic shear modulus at structural equilibrium (G) presented in Table 3. On the other hand, the results of nonlinear rheological experiments show a different structural picture. The critical strain γc and yield stress σ for the onset of nonlinear behavior are Y The values ​​of G indicate that the ink formulated with SEBS C-H6180X withstands shear stress better than the other two inks (see Table 3). Such greater resistance to mechanical stress is associated with better particle dispersion. Therefore, the copolymer SEBS C-H6180X is the best choice for improving the dispersion of active and conductive additives. Using the Payne effect, the plateau value G, indicated by G', at smaller stress amplitudes is p and the maximum G´ measured with a larger amplitude for G´´ maxWe detailed the dispersion index calculated from the ratio between G p / G´´ max It has been shown that the G p / G´´ max A relationship between larger values ​​of G and samples with better dispersion of colloidal particles was clearly established. G calculated from the data plotted in Figure 1d p / G´´ max The values ​​of G in Table 3 are reported. p / G´´ max The ratio indicates that the SBS copolymer promotes better dispersion of solid particles in the ink. Overall, the rheological results reported in Figure 1 and Table 3 clearly suggest that SEBS C-H6110 is not the optimal copolymer when targeting a high degree of particle dispersion in the ink.

[0096] Comparative Examples 1, 3, and 4. Rheological properties of inks - effect of different ink preparation methods

[0097] Figure 2 shows the degree of reproducibility of rheological data measured on sample SEBS C-H6110 / M3 (Comparative Example 3), for which four tests performed at different sample thicknesses are reported. Qualitatively similar data sets were measured using samples SEBS C-H6110 / M1 (Comparative Example 1; see the section above) and SEBS C-H6110 / M2 (Comparative Example 4). At the onset of steady shear, distinct viscosity transients are measured, converging to a steady value after 40 seconds (see Figure 2a). Nevertheless, mechanical spectra were measured that closely resembled those of aggregated particulate gels, sterically stabilized particulate gels, or glassy dispersions of Brownian spheres. In Figure 2a, G' exhibits a very weak frequency dependence and is larger than G'', the latter showing a reproducible minimum located between 2 and 10 Hz, which, within the framework of mode coupling theory of glasses, defines the separation between the time of particle relaxation within the cages formed by nearest neighbors and the slower time of cage melting. Qualitatively similar spectra have been recorded for NMP-based cathode slurries using PVDF as a binder.

[0098] Nevertheless, to quantitatively distinguish between samples generated according to the three different experimental procedures, a statistical treatment of the data shown in Figure 2 was performed. Figure 3 shows the mean values ​​and error bars of the rheological functions calculated from the data of four tests performed at different thicknesses. Overall, the data shown in Figure 3 reveal that the rheological properties are sensitive to the method used to prepare the three inks.

[0099] 0.5s, which is inherently designed to improve experimental reproducibility in concentrated suspensions by shear-inducing specific structures. -1 Aside from the results of the steady shear tests at 1000 s, the rheological data suggest that sample SEBS C-H6110 / M3 exhibits a longer structure accumulation after the cessation of steady shear. Figure 3a shows that G´ of sample SEBS C-H6110 / M1 reaches structural equilibrium after 1000 s with an initial power-law behavior typical of glassy or gelled colloidal dispersions. In contrast, the structure of sample SEBS C-H6110 / M3 continues to recover after 2000 s and barely reaches equilibrium within 1 h. Sample SEBS C-H6110 / M2 exhibits an intermediate rate.

[0100] The mechanical spectra of the three inks, plotted in Figure 3b, show that the shear modulus of sample SEBS C-H6110 / M3 is significantly larger than that of the other two inks for all tested frequencies. A local minimum in G´, corresponding to the transition between structural relaxation processes at low frequencies and fast particle local motion at high frequencies, is present in all samples. However, the shift of local motion to higher frequencies in sample SEBS C-H6110 / M2 suggests an enhancement in the speed of this relaxation process.

[0101] The LAOS behavior of the slurry, shown in Figure 3c, exhibits the Payne effect, commonly found in highly filled polymer melts or concentrated dispersions. This effect is characterized by a concomitant decrease in the G' modulus and a local maximum in G' prior to yielding and flow at higher stresses (G' becomes larger than G'). Overall, the data in Figure 3c reveal that sample SEBS C-H6110 / M3 is more resistant to stress, as the onset of nonlinear behavior and the crossover between G' and G' occur at higher stresses. The rheological data in Figure 3 indicate that the structure of the SEBS C-H6110 / M3 slurry is composed of fewer aggregated particle agglomerates.

[0102] Similar behavior of SEBS C-H6180X / M3 compared to SEBS C-H6180X / M1 and SEBS C-H6180X / M2 is expected.

[0103] Example 2. Morphology and Conductivity Behavior of Printed Cathode

[0104] The homogeneous structure of the printed cathode plays an important role in battery performance. Therefore, the morphological homogeneity of the samples was evaluated by SEM measurements (Figure 4). Good particle distribution was confirmed in all printed cathodes, indicating that the ink properties are suitable for screen printing technology. No component aggregation was visible in any of the samples.

[0105] Regardless of the type of polymer binder and dispersion method, the images reveal a three-dimensional interconnected structure of all three battery components (binder, conductive additive, and active material). Non-spherical active material particles exhibiting rod-like structures with non-uniform sizes on the order of 2 μm are also evident in all samples. The presence of voids (porosity) along the electrode surface is evident and is attributed to solvent evaporation and differences in particle size and shape. This porosity allows lithium ions access to the cathode, increasing the interfacial area between the electrode and electrolyte and facilitating intercalation rates.

[0106] Figures 4a, 4b, and 4c show that the morphology is independent of the chemical structure of the binder when the same dispersion method is applied. Comparing the SBS sample (Figure 4a; i.e., Comparative Example 2) and the SEBS sample (Figures 4b and 4c, i.e., Example 1 and Comparative Example 1, respectively) prepared using Method 1, it can be concluded that dry mixing of the active and conductive additives results in a similar degree of particle dispersion. Therefore, the presence of ethylene blocks in the SEBS copolymer (absent in SBS) and the proportion of styrene do not affect the cathode morphology, as the cathode porosity (approximately 70%) and microstructure are the same. Furthermore, the DC conductivity is approximately 10 S.m for different polymers with the same dispersion method. -1 It was observed that a good structural distribution was achieved within the different polymers studied, promoting good mechanical stability and good adhesion between the different particles.

[0107] Conductivity measurements were performed by the four-probe method using a current source DC 9818 from Time Electronics and a nanovoltmeter 2182 from Keithley. For the measurements, the electrode material was deposited on an insulator substrate and the conductivity (σ e , S.cm -1 ) was calculated by the following formula:

[0108]

number

[0109] where t is the thickness of the sample in cm, I is the current in amperes, and V is the voltage in volts.

[0110] On the other hand, Figures 4c, 4d, and 4e (Comparative Example 1, Comparative Example 4, and Comparative Example 3, respectively) show significant differences in particle distributions for samples prepared using inks formulated after different preparation methods. In particular, the sample prepared by Method 2 (Figure 4d) shows that polymer particles coat the active and conductive particles. The presence of copolymer particles can be explained by the fact that when the particles are first dispersed in a solvent, the resulting slurry has significant viscosity, which is detrimental to the complete solvation of the copolymer. Furthermore, the mixing time of the copolymer in the ink is shortened compared to the other two methods. The polymer coating of the particles not only affects the mechanical properties but also the DC conductivity, since it promotes electrical connection between the active materials. In this particular sample, the DC conductivity is 19.6 ± 0.9 Sm -1 , which is higher than that of inks prepared by different methods: 8.4±1.5 and 15.7±1.0 S m for SEBS C-H6110 / M1 and SEBS C-H6110 / M3, respectively. -1 Nevertheless, the samples exhibit the same porosity of 70%.

[0111] Overall, the results shown in Figure 4 indicate that the method for ink preparation affects the cathode structure, in contrast to the binder chemistry, which does not significantly affect the degree of particle dispersion in the cathode and its porosity.

[0112] Example 3. Electrochemical Performance - Cycling Behavior

[0113] The half-cell electrochemical kinetics of the printed cathodes were evaluated by various techniques, including charge / discharge cycling (Figure 5), electrochemical impedance spectroscopy, and differential capacity (dQ / dV) (Figure 6). The charge / discharge cycling performance was evaluated at room temperature at different rates, from C / 5 to 5C, in the voltage range from 2.5V to 4.2V. Figure 5a shows the fifth cycle of the charge / discharge performance results at 5C and C / 5 rates for all printed cathodes. The presence of a flat plateau in the charge / discharge curves is evident, located at approximately 3.2V and 3.7V, respectively, which decreases with increasing C rate and thus decreasing lithium diffusion. This flat voltage plateau is due to the Fe, Fe+, Fe-Fe ... 2+ and Fe 3+ Due to the presence of both phases, LiFePO4 and FePO4 - It shows a redox reaction between

[56] .

[0114] By comparing different polymer binders, SEBS C-H6110 / M1 (5C and C / 5) showed 52 and 137 mAh.g -1 The lower charge / discharge performance (5C) and lower plateau stability are evident. This fact proves that the polymer binder type effectively influences the battery rate performance due to the specific interactions between the active material, conductive additive, and polymer matrix. Therefore, the cathode prepared with SEBS C-H6180X / M1 exhibited the highest discharge capacity at both 5C and C / 5 rates (105 and 142 mAh.g, respectively). -1Therefore, by comparing the discharge performance of SEBS C-H6110 / M1 and SEBS C-H6180X / M1, we can conclude that the ethylene / butylene (E / B) ratio strongly influences battery performance, increasing as the E / B ratio increases. We also conclude that for approximately the same percentage of styrene (25% and 30% for SBS C-718 / M1 and SEBS C-H6110 / M1), the presence of ethylene in SEBS negatively impacts discharge capacity at high C rates and positively impacts discharge capacity at low C rates. The presence of ethylene in SEBS leads to higher polymer entanglement compared to SBS, promoting better coupling between the polymer and particles (active material and conductive additives), thus improving battery performance.

[0115] Regarding the different methods used to prepare the ink, the sample prepared by Method 3 (M3) exhibited higher charge / discharge specific capacity (charge and discharge capacities of 150 and 147 mAh.g, respectively) when compared to the samples prepared by the other preparation methods. -1 It is concluded that the results show that the active and conductive additives are significantly different from those of the methods M1 and M2. Compared to methods M1 and M2, method M3 has the unique feature of adding the active and conductive additives separately to the polymer solution, increasing the interaction between both particles and the polymer. This increase in polymer-particle interaction improves the pathways for lithium ion migration and promotes higher lithium intercalation / deintercalation. On the other hand, the results for SEBS C-H6110 / M1 show a lower plateau voltage and increased potential, promoting reduced lithium diffusion, which explains the sample's lower specific capacity.

[0116] The rate performance was also evaluated (Fig. 5b), which showed that the discharge capacity decreased with increasing C rate. The discharge capacities were 128.3, 141.2, and 136.3 mAh.g at C / 5 for SBS C-718 / M1, SEBS C-H6180X / M1, and SEBS C-H6110 / M1, respectively. -1 and 83.6, 105.3, and 52.5mAh.g at 5C. -1This indicates that the choice of polymer matrix influences battery performance, with SEBS C-H6180X / M1 exhibiting the highest discharge capacity at different C rates. Evaluation of different dispersion methods for a given polymer binder revealed that the discharge capacities were 136.3, 126.7, and 146.4 mAh.g at C / 5 for SEBS C-H6110 / M1, SEBS C-H6110 / M2, and SEBS C-H6110 / M3, respectively. -1 and 52.5, 95.8, and 106.3mAh.g at 5C. -1 , indicating that a higher discharge capacity is obtained for the ink sample obtained by Method 3 (SEBS C-H6110 / M3). Figure 5b also shows the recovery cycles of the different samples, demonstrating a capacity loss at C / 5 for all samples.

[0117] The cycling stability of the printed cathodes was evaluated after 50 charge / discharge cycles at C and 2C rates (Figure 5c). All samples showed good stability and high capacity retention across cycles and scan rates. The capacity retention after 50 cycles at 2C for cathodes with different polymer binders is 85, 93, and 100% for SEBS C-H6110 / M1, SBS C-718 / M1, and SEBS C-H6180X / M1, respectively. The calculated capacity loss between the second and 50th cycles is 40%, 5%, and 7% for SEBS C-H6110 / M1, SBS C-718 / M1, and SEBS C-H6180X / M1, respectively.

[0118] Furthermore, the different dispersion methods result in cathodes with favorable stability and high capacity retention over cycles and scan rates. Thus, the capacity retention after 50 cycles at 2C is 85, 99, and 88% for SEBS C-H6110 / M1, SEBS C-H6110 / M2, and SEBS C-H6110 / M3, respectively, and the capacity fade between the 2nd and 50th cycles is 40, 1, and 1%, respectively.

[0119] The coulombic efficiency (Fig. 5d) is about 100% for all polymer binders and preparation methods, except for the C-rate SEBS C-H6110 / M2 cathode, which shows a coulombic efficiency of about 95%.

[0120] Therefore, the overall results indicate that SEBS C-H6180X is the most suitable polymer to be used as a polymer binder for cathode development due to the high discharge capacity, good stability, high capacity retention, and low capacity fade obtained. Furthermore, it is concluded that the dispersion method also affects the battery rate performance. Method M1 (conventional) results in a lower battery rate performance when compared to the other two methods (Figure 5a). Method M3 results in higher charge and discharge capacities (106 and 147 mAh.g for discharge capacity at 5C and C / 5, respectively). -1 It was concluded that the slurry preparation method also affects the cathode performance, with Method 3 yielding the best results, indicating that the active material and conductive additives should be better added separately to the polymer solution to improve their interaction with the polymer binder and result in better battery performance.

[0121] Example 4. Electrochemical Impedance Spectroscopy (EIS) and dQ / dV Results

[0122] The electrochemical properties of the printed cathodes prepared using different polymers and methods were evaluated by EIS (Figure 6a) and dQ / dV (Figure 6b) techniques.

[0123] The Nyquist plots of the printed cathode before and after battery cycling (Figure 6a) were evaluated. The Nyquist plot features two distinct steps: one semicircle at high frequencies and a straight line at low frequencies. In this case, the equivalent circuit shown (inset of Figure 6a) was used to evaluate the kinetic parameters and reaction mechanism. The equivalent circuit and Nyquist plots are shown in Figure 6a. The electrolyte (R e), and the film surface (R f ), and charge transfer resistance (R ct The equivalent circuit is characterized by a semicircle located at high frequencies, which represents the sum of different resistive contributions such as the π-phase and π-phase. Meanwhile, at lower frequencies, a straight line represents the semi-infinite diffusion of the Warburg element (W) associated with lithium ion diffusion. The prepared cathode evaluated before cycling does not exhibit a 45°-defined Warburg line in the low-frequency region due to the absence of an SEI on the cathode surface. The other element in the equivalent circuit is a capacitance element (CPE3), which represents the differential intercalation capacity in the LFP cathode material.

[0124] The fitting of the experimental results to the equivalent electrical circuit shows good agreement (Fig. 6a), and the R obtained by the fitting procedure e , R SEI , and R ct The total resistance (R total The results show that the resistance increases after battery cycling for all samples except for the SEBS C-H6180X / M1 sample, which decreases from 519 Ω to 321 Ω. The high R of the SEBS C-H6110 / M1 sample ct The resistance (3860 Ω before cycling and 3926 Ω after cycling) leads to poor battery performance in charge / discharge and rate cycling. The results show that SEBS C-H6110 has a higher R total While ink preparation method 1 is a polymer binder that results in a cathode with the highest R total The total resistance value allows us to conclude that the polymer and dispersion method influence the specific polymer-filler interaction, resulting in variations in ion transport at the solid-electrolyte interface and charge transfer. The lithium ion diffusion coefficient (D) in the cathode active material Li + ) was calculated for all pre- and post-cycling samples according to the following formula:

[0125]

number

[0126] In the formula, R is the gas constant, T is the absolute temperature, A is the surface area of ​​the cathode, n is the number of electrons per molecule during oxidation, F is the Faraday constant, and C is the Li + concentration of σ w is the Warburg coefficient, R1 is the electrolyte resistance, R 2,SEI is the resistance of the SEI, R 3,ct is the charge transfer resistance, and W is the angular frequency.

[0127] The results show that after cycling, the cells exhibited an increased D compared to the pre-cycling sample due to SEI formation and electrolyte impregnation. Li + Comparing all the samples, SEBS C-H6180X / M1 showed the highest Du after cycling. + (15.6×10 -16 cm 2 .s -1 ) SEBS C-H6180X copolymer has been demonstrated to improve the structural network of electrical pathways, allowing for better lithium ion diffusion. Regarding the dispersion method, Methods 2 and 3 are D compared to Method 1. Li + Methods 2 and 3 show an improvement of 238 × 10 -16 and 187 × 10 -16 cm 2 .s -1 D Li + D Li + The improvement depends more on the proper selection of dispersion method than on the copolymer chemical structure.

[0128] The differential capacity (dQ / dV) curves of the printed cathodes are shown in Figure 6b. Two symmetrical and sharper peaks are observed between 3.35 V and 3.50 V, indicating high electrochemical reversibility of lithium ions. These values ​​correspond to the reduction (at the backward scan potential) and oxidation (at the forward scan potential) processes in the printed cathode, resulting from the intercalation and deintercalation processes of lithium ions, respectively. The peak separation voltages are between 0.09 and 0.12 V. The high peak separation voltage of 0.12 V for SEBS C-H6110 / M1, along with the observed high concentration polarization and high total resistance, again attest to the poor battery performance of this cathode. On the other hand, by comparing different polymer binders, SEBS C-H6180X / M1 exhibits a peak separation voltage of 0.09 V, reinforcing its superior battery performance.

[0129] The rapid increase in current at the oxidation and reduction peaks indicates that the printed cathode obtained with sample SEBS C-H6180X exhibits lower polarization and better reversibility compared to the other samples. Furthermore, the low separation of the oxidation and reduction peaks in SEBS C-H6180X is due to the small particle agglomerates of the active and conductive additives in the polymer matrix.

[0130] [List of citations] 1. Goncalves, R. et al., "Poly(styrene-butene / ethylene-styrene): A New Polymer Binder for High-Performance Printable Lithium-Ion Battery Electrodes," ACS Applied Energy Materials, 2018, Vol. 1, pp. 3331-3341. 2. Goren, A et al., "Influence of Solvent Evaporation Rate in the Preparation of Carbon-Coated Lithium Iron Phosphate Cathode Films on Battery Performance", Energy Technology, 2016, Vol. 4, pp. 573-582.

Claims

1. 1. An electrode for a lithium ion battery having an active layer comprising an electrode active material, a conductive additive, and a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder, Linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder, - Melt flow rate (MFR) measured at 230°C and 2.16 kg load of 4 to 220 g / 10 min; - a molecular weight (weight average molecular weight) of less than 100,000 g / mol; a styrene content of 10 to 20% by weight; An electrode for a lithium ion battery, comprising:

2. 10. The electrode of claim 1, wherein the linear SEBS copolymer is further characterized in that the polystyrene block (S) has a molecular weight of 9,000 g / mol or less.

3. 3. The electrode of claim 1, wherein the electrode is a cathode and the electrode active material is a cathode active material.

4. 4. The cathode of claim 3, wherein the content of the binder in the active layer of the cathode is 2% by weight to 25% by weight, based on the total weight of the active layer of the cathode.

5. 5. The cathode of claim 4, wherein the amount of the cathode active material is 45% to 95% by weight, based on the total weight of the active layer of the cathode.

6. 6. The cathode of claim 5, wherein the amount of the conductive additive is 3% to 30% by weight, based on the total weight of the active layer of the cathode.

7. 3. The electrode of claim 1, wherein the electrode is an anode and the electrode active material is an anode active material.

8. 8. The anode according to claim 7, wherein the content of the binder in the active layer of the anode is 2% by weight to 25% by weight, based on the total weight of the active layer of the anode.

9. 10. A method for preparing an electrode according to claim 1, comprising: a) obtaining a slurry comprising a linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder, an electrode active material, a conductive additive, and a suitable solvent; Linear styrene-ethylene / butylene-styrene (SEBS) copolymer as a binder, - Melt flow rate (MFR) measured at 230°C and 2.16 kg load of 4 to 220 g / 10 min; - a molecular weight (weight average molecular weight) of less than 100,000 g / mol; a styrene content of 10 to 20% by weight; and b) applying the slurry to a current collector; c) drying the applied slurry to form an electrode active layer on the current collector; A method for preparing an electrode, comprising:

10. 10. The method for preparing an electrode according to claim 9, wherein the electrode is a cathode and the electrode active material is a cathode active material.

11. The slurry of step a) - dissolving said SEBS copolymer in a solvent under stirring to obtain a copolymer solution; - adding sequentially a cathode active material and a conductive additive to the stirred copolymer solution to obtain a suspension; - subjecting said obtained suspension to an agitation process to obtain a slurry; 11. The method for preparing a cathode according to claim 10, wherein the cathode is formed by:

12. 10. The method for preparing an electrode according to claim 9, wherein the electrode is an anode and the electrode active material is an anode active material.

13. A method for preparing an electrode according to any one of claims 9 to 12, wherein step b) is carried out by screen printing.

14. 3. A Li-ion battery comprising a cathode, an anode, a separator, and a suitable electrolyte interposed between the cathode and the anode, wherein either the cathode or the anode, or both, are electrodes as defined in claim 1 or 2.

15. 15. A Li-ion battery according to claim 14, wherein the cathode is as defined in any one of claims 3 to 6 and / or the anode is as defined in any one of claims 7 or 8.

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