Reinforced Molded Articles Containing Fluoropolymers
Patent Information
- Application Number
- JP2024503381
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-07-23
- Filing Date
- 2022-07-19
- Publication Date
- 2025-06-26
AI Technical Summary
Existing methods for producing molded articles from fluoropolymers face a trade-off between ease of processing and achieving good mechanical properties, as polymers with low melting points and low melt viscosity, which are easy to process, often result in materials with poor mechanical strength, and fully crosslinked polymers, while being difficult to recycle.
A method involving fluoropolymers with more than 30 mol% VDF units, iodine-containing chain ends, and heat treatment below the polymer's melting point to enhance mechanical properties without compromising processability.
The method results in reinforced molded articles with improved mechanical properties and adhesion, maintaining ease of processing and recyclability.
Abstract
Description
[Technical field]
[0001] This application claims priority to European Patent Application Publication No. 21187478.9, filed July 23, 2021, the entire contents of which are incorporated herein by reference for all purposes.
[0002] The present invention relates to a method for making a molded article comprising a selected vinylidene fluoride (VDF)-based fluoropolymer, which article is strengthened by heat treatment under controlled conditions after it is formed. The molded article comprising the selected fluoropolymer can be first formed using a solvent treatment technique and then strengthened by simple heat treatment. The article obtained after heat treatment is strengthened in that it has improved mechanical properties and possibly other advantageous properties such as improved adhesion to substrates. The method of the present invention can be applied, for example, in the manufacture of components of electrochemical cells, such as electrodes, or for the manufacture of membranes, especially porous membranes. [Background technology]
[0003] When making molded articles containing fluoropolymers, especially VDF-based fluoropolymers, it is often desirable to achieve good mechanical properties. On the other hand, to facilitate the manufacture of molded articles, it is typically desirable to select VDF-based fluoropolymers that are easy to handle, either by melt processing techniques or solvent processing techniques. To facilitate melt processing, it is typically desirable for the fluoropolymer to be thermoplastic and have a relatively low melting point and a relatively low melt viscosity, so that it can be molded and / or extruded at relatively low temperatures and pressures, and to obtain defect-free molded articles with smooth surface finishes. Similarly, when solvent processing techniques are used in which the polymer is dissolved in a solution with a suitable solvent and then precipitated in its final form from the solution, such as, for example, the solvent casting technique used to make coatings, including films, membranes, or electrode coatings, it is desirable for the polymer to be easily dissolved in conventional solvents.
[0004] These desirable properties of ease of processing a material are generally at odds with obtaining good mechanical properties in the final product: for a given class of polymers, the lower the melting point, the lower the melt viscosity, and the higher the solubility of the fluoropolymer, generally the lower the mechanical properties of the resulting product.
[0005] To solve this problem, the art has attempted to form molded articles using easily processable polymers that incorporate selected termini that can be subsequently crosslinked by adding crosslinking agents or radical initiators to the composition.
[0006] Although this method is effective and is used industrially in many situations, it is not applicable in all situations because it typically produces highly crosslinked materials with properties significantly different from the starting polymer that are not suitable for many applications. Fully crosslinked polymers also generally become more difficult to recycle or reuse because they are no longer thermoplastic. Summary of the Invention
[0007] Therefore, there is a need for a method of reinforcing articles made from polymers that is easy to process and does not have these drawbacks.
[0008] In one aspect, the present invention relates to a method of making a reinforced molded article, the method comprising: a) providing one or more fluoropolymers having a melting point Tm, said one or more fluoropolymers comprising: (i) more than 30 mol % of repeat units derived from VDF, based on the total number of repeat units of the polymer; (ii) a step in which the iodine-containing chain end, -CH2I, is present in an amount of 0.1 to 0.9 per chain; b) dissolving the fluoropolymer in a suitable solvent and forming a precursor solution; c) precipitating said fluoropolymer in solid form from said precursor solution, thereby obtaining a molded article comprising said fluoropolymer; e) heat treating the molded article at a temperature between 100° C. and the minimum melting point Tm of the one or more fluoropolymers for at least 15 minutes, thereby obtaining the reinforced molded article. Includes.
[0009] In another aspect, the present invention relates to electrode coatings and filtration membranes obtainable by the process of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0010] The present invention relates to a method for making reinforced molded articles comprising selected fluoropolymers.
[0011] The term "molded article" should be intended to have a broad meaning as a solid article having a shape. It includes articles having three-dimensional shapes, including hollow shapes, and also essentially planar articles such as films. Fibers and hollow fibers are also considered to be examples of "molded articles". Coatings are also considered "molded articles" in the context of the present invention, although the substrate of the coating is not considered to be part of the "molded article".
[0012] According to the present invention, such a molded article is first formed, i.e., a solid article having a defined shape is obtained from a composition comprising the selected fluoropolymer, and then, in a subsequent step, said molded article is reinforced by being subjected to a heat treatment as described in detail below, resulting in a reinforced molded article. The heat treatment is carried out at a temperature below the melting point of the polymer (or below the melting point of the polymer with the lowest melting point if a polymer blend is used), so that the molded article does not melt. In some cases, even without melting, the molded article may partially change its shape (e.g. shrink) as a result of the heat treatment, so that the shape of the "reinforced molded article" of the present invention may differ from that of the "molded article" when it was first formed, i.e., before the heat treatment. As an example, a rectangular film having certain dimensions may shrink along one or more dimensions as a result of the heat treatment.
[0013] As mentioned above, the reinforced molded articles of the present invention are made from compositions comprising one or more selected fluoropolymers. Such one or more selected fluoropolymers have the following characteristics: (i) more than 30 mol %, preferably more than 50 mol %, more preferably more than 70 mol %, even more preferably more than 85 mol % of repeat units derived from VDF, based on the total number of repeat units of the polymer; (ii) having an iodine-containing chain end, -CH2I, in an amount of 0.1 to 0.9, preferably 0.3 to 0.7 per chain; (iii) preferably a weight average molecular weight (M) of at least 200 kilodaltons, preferably at least 300 kilodaltons, more preferably at least 400 kilodaltons, even more preferably at least 500 kilodaltons, and most preferably at least 600 kilodaltons, as measured by GPC against monodisperse polystyrene standards using N,N-dimethylacetamide (DMA) as the solvent. w ).
[0014] The selected fluoropolymer of the present invention may further comprise repeat units derived from at least one other comonomer different from VDF. Such comonomer can be either hydrogenated or fluorinated comonomer. The term "hydrogenated comonomer" is intended herein to mean an ethylenically unsaturated comonomer that does not contain fluorine atoms. Non-limiting examples of suitable hydrogenated comonomers include, in particular, ethylene, propylene, vinyl monomers such as vinyl acetate and styrene monomers such as styrene and p-methylstyrene.
[0015] The hydrogenated comonomer may be a monomer containing at least one polar group selected from the group consisting of a hydroxyl group, a carboxylic acid group, and an epoxy group.
[0016] According to a particular preferred embodiment, the hydrogenated monomer may be selected from hydrophilic (meth)acrylic monomers of the following formula: [ka] (In the formula, R1, R2, and R3, which may be the same or different, are each independently a hydrogen atom or a C1-C3 hydrocarbon group; R OH is a hydroxyl group or a C1-C5 hydrocarbon moiety containing at least one hydroxyl group).
[0017] More preferably, R3 is hydrogen, and even more preferably, each of R1, R2, R3 is hydrogen.
[0018] Non-limiting examples of hydrophilic (meth)acrylic monomers are acrylic acid, methacrylic acid, hydroxyethyl (meth)acrylate, hydroxypropyl (meth)acrylate, hydroxyethylhexyl (meth)acrylate, among others.
[0019] The hydrophilic (meth)acrylic monomer is more preferably selected from the following: - Hydroxyethyl acrylate (HEA) of the formula: [ka] - 2-Hydroxypropyl acrylate (HPA) of any of the following formulas: [ka] - Acrylic acid (AA) of the formula: [ka] - and mixtures thereof.
[0020] More preferably, the hydrophilic (meth)acrylic monomer is AA and / or HEA, even more preferably AA.
[0021] The amount of hydrophilic (meth)acrylic monomer in the fluoropolymer of the present invention can be determined by any suitable method, in particular by acid-base titration, which is well suited for determining the acrylic acid content, by NMR, which is suited for quantifying (meth)acrylic monomers containing aliphatic hydrogen in the side chain (e.g., HPA, HEA), or by weight balance based on the total amount of (meth)acrylic monomers fed and the residual unreacted (meth)acrylic monomer during the production of the fluoropolymer.
[0022] When one or more of the selected fluoropolymers of the present invention contain repeat units derived from hydrophilic (meth)acrylic monomers, their amount is preferably at least 0.1 mol%, more preferably at least 0.2 mol% and / or at most 10 mol%, more preferably at most 7.5 mol%, even more preferably at most 5 mol%, and most preferably at most 3 mol%.
[0023] The term "fluorinated comonomer" is intended herein to mean an ethylenically unsaturated comonomer that contains at least one fluorine atom. Non-limiting examples of suitable fluorinated comonomers include: (a) C2-C8 fluoro and / or perfluoroolefins such as tetrafluoroethylene (TFE), hexafluoropropylene (HFP), pentafluoropropylene and hexafluoroisobutylene; (b) C2-C8 hydrogenated monofluoroolefins, such as vinyl fluoride, 1,2-difluoroethylene and trifluoroethylene; (c)Formula CH2=CH-R f0 (In the formula, R f0 is a C1-C6 perfluoroalkyl group), (d) chloro-, and / or bromo-, and / or iodo-C2-C6 fluoroolefins such as chlorotrifluoroethylene (CTFE); (e) Formula CF2=CFOR f1 (In the formula, R f1 is a C1-C6 fluoro- or perfluoroalkyl group, for example -CF3, -C2F5, -C3F7), (per)fluoroalkyl vinyl ethers; (f) Formula CF2=CFOX0 (wherein X0 is a C1-C 12 Oxyalkyl group or C1-C 12 (per)fluoro-oxyalkyl vinyl ethers of (per)fluorooxyalkyl groups, for example the perfluoro-2-propoxy-propyl group; (g)Formula CF2=CFOCF2OR f2 (In the formula, R f2 is a C1-C6 fluoro- or perfluoroalkyl group, for example -CF3, -C2F5, -C3F7 or a C1-C6 (per)fluorooxyalkyl group having one or more ether groups, for example -C2F5-O-CF3), (h) Formula: [ka] (wherein R f3 , R f4 , R f5 and R f6each independently represents a C1-C6 fluoro- or per(halo)fluoroalkyl group containing a fluorine atom and optionally one or more oxygen atoms, e.g., -CF3, -C2F5, -C3F7, -OCF3, -OCF2CF2OCF3). of fluorodioxole.
[0024] The most preferred fluorinated comonomers are tetrafluoroethylene (TFE), trifluoroethylene (TrFE), chlorotrifluoroethylene (CTFE), hexafluoropropylene (HFP), perfluoromethyl vinyl ether (PMVE), perfluoropropyl vinyl ether (PPVE) and vinyl fluoride, of which HFP is the most preferred.
[0025] When at least one comonomer (preferably HFP) is present, the polymer typically contains from 0.05 mol % to 14.5 mol %, preferably from 1.0 mol % to 13.0 mol %, of repeat units derived from said comonomer relative to the total number of moles of repeat units of the fluoropolymer.
[0026] As mentioned above, the content of repeat units derived from VDF in the selected fluoropolymer of the present invention is more than 30%, preferably more than 50%, more preferably more than 70%, and even more preferably more than 85%. The method of the present invention can be applied to a wide range of materials, but for certain applications, fluoropolymers with a higher amount of repeat units derived from VDF are preferred. In some embodiments, the amount of repeat units derived from vinylidene fluoride in the fluoropolymer is at least 85 mol%, preferably at least 86 mol%, more preferably at least 87 mol%, so as not to impair the excellent properties of vinylidene fluoride resin, such as chemical resistance, weather resistance and heat resistance. For example, in some cases where such fluoropolymers contain VDF units in an amount less than 85 mol%, they may dissolve in certain solvents, such as those used in the electrolyte liquid phase of secondary batteries.
[0027] According to a particular embodiment, the fluoropolymer of the present invention consists essentially of repeat units deriving from VDF and from hydrophilic (meth)acrylic monomers as defined above.
[0028] According to another embodiment, the fluoropolymer of the invention consists essentially of repeat units derived from VDF, HFP and, optionally, hydrophilic (meth)acrylic monomers as defined above.
[0029] The term "consisting essentially of" when used in relation to the repeating units of the fluoropolymer of the present invention is understood to mean that in addition to the recited repeating units, defects, end chains and impurities may be present in the fluoropolymer of the present invention without substantially affecting the advantageous characteristics of the fluoropolymer.
[0030] Typically, the selected fluoropolymer of the present invention may further contain other moieties such as defects, end groups, etc., which do not affect or impair its physicochemical properties.
[0031] The fluoropolymers of the present invention preferably have a weight average molecular weight (M) of at least 200 kilodaltons, preferably at least 300 kilodaltons, more preferably at least 400 kilodaltons, even more preferably at least 500 kilodaltons, and most preferably at least 600 kilodaltons, as measured by GPC using N,N-dimethylacetamide (DMA) as the solvent against monodisperse polystyrene standards. w ) M w Although the upper limit is not particularly critical, the selected fluoropolymers of the present invention preferably have an M of at most 1400 kilodaltons, preferably at most 1300 kilodaltons, more preferably at most 1200 kilodaltons, even more preferably at most 1100 kilodaltons, and most preferably at most 1000 kilodaltons, as measured by GPC in the same manner. w It is preferred that the compound has the formula:
[0032] As mentioned above, the fluoropolymers of the present invention are characterized by containing a controlled amount of iodine-containing chain ends -CH2I. Specifically, the fluoropolymers of the present invention have an amount of iodine-containing chain ends -CH2I per polymer chain of 0.1 to 0.9, preferably 0.3 to 0.7. The presence of iodine-containing chain ends -CH2I is a fingerprint resulting from the use of an iodine-containing chain transfer agent in the emulsion polymerization. This manufacturing process for forming an aqueous dispersion of the fluoropolymers of the present invention is described in WO 2020 / 126449 of Solvay Specialty Polymers SpA.
[0033] Generally, the chain ends are of the formula -CH2I. The concentration of iodine-containing chain ends -CH2I can be determined by the techniques detailed in PIANCA, M., et al. End groups in fluoropolymers. Journal of Fluorine Chemistry. 1999, vol. 95, p. 71-84. 1 By H-NMR, it can be determined in a manner substantially similar to the determination of the -CF2-CH2Br or -CF2-CH2OH end groups, taking into account the chemical shift of -CH2I.
[0034] The NMR method described provides information on the concentration (mmol / Kg) of iodine-containing chain ends -CH2I, which, in combination with information on the molecular weight distribution, which can be measured via GPC as described above, can be converted to the amount of iodine-containing chain ends -CH2I per polymer chain. The GPC method described provides both the weight average molecular weight (Mw) and the number average molecular weight (Mn), which are the values necessary to convert the iodine content values from mmol / Kg to iodine-containing chain ends per polymer chain.
[0035] According to certain preferred embodiments, the selected fluoropolymers of the present invention are substantially free of fluorinated surfactants.
[0036] According to certain preferred embodiments, the selected fluoropolymers of the present invention are produced by radical polymerization, preferably emulsion polymerization, in an aqueous environment, the polymerization medium being preferably substantially free of fluorinated surfactants. As mentioned above, the appropriately selected fluoropolymers for use in the present invention can be prepared according to the procedures described in WO 2020 / 126449 of Specialty Polymers SpA.
[0037] The expression "substantially free" when referring to the amount of fluorinated surfactant in the reaction medium is intended to exclude the presence of any significant amount of said fluorinated surfactant, for example, requires that the fluorinated surfactant is present in an amount of less than 5 ppm, preferably less than 3 ppm, more preferably less than 1 ppm relative to the total weight of the reaction medium.Similarly, the expression "substantially free" when referring to the amount of fluorinated surfactant in the fluoropolymer is intended to exclude the presence of any significant amount of said fluorinated surfactant, for example, requires that the fluorinated surfactant is present in an amount of less than 5 ppm, preferably less than 3 ppm, more preferably less than 1 ppm relative to the total weight of the fluoropolymer.
[0038] Advantageously, the selected fluoropolymers of the present invention contain a relatively low percentage of insoluble gel as measured by the gel content test described in the experimental section. Such gel content is preferably less than 20% by weight, preferably less than 10% by weight, more preferably less than 5% by weight, and even more preferably less than 3% by weight, based on the total weight of the fluoropolymer.
[0039] As mentioned above, the fluoropolymers of the present invention can be prepared by a process that involves emulsion polymerization in an aqueous environment in the presence of one or more radical initiators and one or more iodine-containing chain transfer agents.
[0040] Inorganic radical initiators will generally be preferred in embodiments where no fluorinated surfactant is added, due to their ability to generate polar chain ends which have the effect of stabilizing the fluoropolymer particles in the dispersion, with persulfate radical initiators generally being the ones most used for this purpose.
[0041] The selection of the persulfate radical initiator is not particularly limited, but it is understood that suitable radical initiators for the aqueous emulsion polymerization process are selected from compounds capable of initiating and / or accelerating the polymerization process in an aqueous environment, including, but not limited to, sodium persulfate, potassium persulfate, and ammonium persulfate.
[0042] One or more radical initiators as defined above may be added to the aqueous medium defined above in an amount advantageously ranging from 0.001% to 20% by weight, based on the weight of the aqueous medium.
[0043] As mentioned above, in the process for producing the selected fluoropolymer of the present invention, an iodine-containing chain transfer agent is added. The iodine-containing chain transfer agent is generally selected from the group consisting of: - Formula R H (I) x (In the formula, R H is a fluorine-free alkyl group containing 1 to 8 carbon atoms and x is an integer from 0 to 2), an iodized hydrocarbon agent (one example of which is CH2I2); - Formula R f (I) x (In the formula, R f is a (per)fluoroalkyl or (per)fluorochloroalkyl containing 1 to 8 carbon atoms, and x is an integer from 0 to 2, an iodized fluorocarbon agent (one example of which is diiodoperfluorobutane, of formula C4F8I2), and - alkali metal or alkaline earth metal iodides, such as in particular those described in US Patent No. 5,173,553 (AUSIMONT SRL) of Dec. 22, 1992. Potassium iodide has been found to be particularly effective as an iodine chain transfer agent in the process of the invention.
[0044] The molar ratio between the iodine-containing chain transfer agent and the initiator is less than 0.12 mol / mol, preferably at most 0.10, more preferably at most 0.09 mol / mol. The applicant has surprisingly found that such a small amount of iodine-containing chain transfer agent is effective in promoting pseudo-living characteristics to the polymerization, while making it possible to achieve high molecular weights and avoid any alterations in the performance of the final polymer.
[0045] The lower limit of the iodine-containing chain transfer agent is not particularly limited, but an amount is generally used that provides a molar ratio between the iodine-containing chain transfer agent and the initiator of at least 0.015, preferably at least 0.03, more preferably at least 0.06 mol / mol.
[0046] As mentioned above, preferably the process is carried out without the addition of a fluorinated surfactant. By "fluorinated surfactant" in the present invention is meant a material conforming to the following formula: R f§ (X - ) k (M + ) k (In the formula, - R f§ is optionally a C5-C alkoxy group containing one or more catenary or non-catenary oxygen atoms 16 selected from (per)fluoroalkyl chains and (per)fluoropolyoxyalkyl chains, -X - -COO - , -PO3 - and -SO3 - is selected from - M + is NH4 +and an alkali metal ion, - k is 1 or 2.
[0047] Non-limiting examples of fluorinated surfactants whose presence in the reaction medium is substantially avoided are: (a) CF3 (CF2) n0 COOM', where n0 is an integer ranging from 4 to 10, preferably from 5 to 7, preferably n1 is equal to 6, and M' represents NH4, Na, Li or K, preferably NH4, (b) T-(C3F6O) n1 (CFXO) m1 CF2COOM″ (where T is a Cl atom or a C x F 2x+1-x’ Cl x’ O perfluoroalkoxide group (wherein x is an integer ranging from 1 to 3, and x' is 0 or 1), n1 is an integer ranging from 1 to 6, m1 is an integer ranging from 0 to 6, M'' is NH4, Na, Li, or K, and X is F or -CF3), (c)F-(CF2CF2) n2 -CH2-CH2-RO3M''', where R is a phosphorus or sulfur atom, preferably R is a sulfur atom, M''' represents NH4, Na, Li or K, and n2 is an integer ranging from 2 to 5, preferably n2 is equal to 3; (d)AR bf -B bifunctional fluorinated surfactant, where A and B, which are equal or different from each other, are represented by the formula -(O) p CFX''-COOM * (In the formula, M * represents NH4, Na, Li or K, preferably M * represents NH4, X″ is F or —CF3, and p is an integer equal to 0 or 1; bf AR bf -B is a divalent (per)fluoroalkyl or (per)fluoropolyether chain such that the number average molecular weight of B is in the range of 300 to 1800, and (e) Mixtures thereof.
[0048] Typically, the emulsion polymerization method described herein for preparing fluoropolymer provides a water dispersion of fluoropolymer, such as a latex.However, for use in the present invention, the selected fluoropolymer is preferably provided as a solid, such as a pellet, or more preferably in a finely dispersed form, such as a powder or granule.Most preferably, the selected fluoropolymer of the present invention can be provided in powder form.
[0049] The selected fluoropolymer powder can be obtained by known techniques, in particular from the fluoropolymer dispersion, by coagulation, for example shear coagulation or temperature-induced coagulation, or by spray drying or other drying or liquid / solid separation. Other solid polymer forms (such as granules or pellets) can be obtained from the powder using known techniques, but as mentioned above, the powder form obtained from the dispersion by coagulation and / or spray drying is the most preferred form for providing the selected fluoropolymer of the present invention, since it is the form that can be more easily solubilized in a solvent due to its surface area to volume ratio.
[0050] Indeed, in the process steps of the present invention, one or more selected fluoropolymers are dissolved in a suitable solvent to form a precursor solution.
[0051] Suitable solvents for the precursor solution are any solvents that can solubilize the selected fluoropolymer of the present invention. Since the selected fluoropolymer of the present invention contains a significant amount of VDF repeat units, all solvents known and commonly used for VDF-based polymers and copolymers can be used in the present invention. Such solvents are typically polar organic solvents, which can preferably be selected from one or more of N-methyl-2-pyrrolidone (commonly referred to as NMP), N-butylpyrrolidone, dimethylformamide, N,N-dimethylacetamide, N,N-dimethylsulfoxide, dihydrolevoglucosenone (Cyrene®), hexamethylphosphamide, dioxane, tetrahydrofuran, tetramethylurea, triethyl phosphate and trimethyl phosphate. Since the selected fluoropolymer used in the present invention has a relatively high molecular weight, more preferably, the solvent is selected from nitrogen-containing organic solvents with greater dissolving power, such as N-methyl-2-pyrrolidone, dimethylformamide or N,N-dimethylacetamide.
[0052] Other solvents suitable for the present invention are those represented by the formula (I- de ), diesters of the formula (I- ea ) and ester amides of the formula (I- da ) diamide: R 1 (O=)CO-A de -OC(=O)R 2 (I- de ) R 1 O(O=)CA ea -C(=O)NR 3 R 4 (I- ea ) R 5 R 6 N(O=)CA da -C(=O)NR 5 R 6 (I- da ) (In the formula, - R equal to or different from each other 1 and R 2are independent, C1~C 20 is selected from the group consisting of hydrocarbon groups; - R equal to or different from each other 3 , R 4 , R 5 and R 6 are independently hydrogen, optionally substituted C1-C 36 R is selected from the group consisting of hydrocarbon groups; 3 , R 4 , R 5 and R 6 are understood to be part of a cyclic moiety that includes the nitrogen atom to which they are attached, which is optionally substituted and / or optionally includes one or more additional heteroatoms; - A de is a C3-C alkyl group containing one or more ether oxygen atoms. 10 is a divalent alkylene group, - A is equal to or different from each other ea and A da are independently C3-C optionally containing one or more ether oxygen atoms and / or one or more functional side groups 10 (a divalent alkylene group).
[0053] All these organic solvents may be used alone or in a mixture of two or more species.
[0054] It should be noted that, depending on the type of article to be produced, the precursor solution may contain additional components such as additives necessary for the proper function and performance of the resulting article. In the following description, the composition of the precursor solution for forming the articles of electrodes, battery separator coatings and membranes will be described in detail. The components that make up the precursor solution for different types of articles can be significantly different, as long as one or more of the selected fluoropolymers of the present invention are present in the composition that constitutes the molded article.
[0055] In the present invention, the term "precursor solution" is intended to denote a composition that can be converted into a molded article by removal of the solvent component, which typically accompanies the forming process. Such a precursor solution comprises a liquid phase that contains the selected fluoropolymer according to the invention in a form solubilized in a suitable solvent. Depending on the article for which the precursor solution is a precursor, the precursor solution may contain other liquid or solid components that may be present as additional solutes in the liquid phase containing the selected fluoropolymer, or as additional liquid phases, or as dispersed solids.
[0056] For example, precursor solutions for electrode coatings known in the art contain only a few weight percent of the selected fluoropolymer and a small amount of solvent just sufficient to solubilize the polymer, while the majority of the composition (typically more than 50 weight percent) is formed by dispersed powdered electroactive materials and fillers.
[0057] On the other hand, precursor solutions for producing membranes or polymeric coatings may contain the selected fluoropolymer and a solvent as the main components or even the only components in the case of coatings.
[0058] Reference to a "forming step", which typically occurs during and / or immediately after the removal of the solvent, must be intended in a very broad sense to include a "passive" forming step, in which the precursor solution already essentially has its final shape while the solvent is being removed, for example when a film of the precursor solution is cast onto a substrate or when the electrode-forming composition (which is a precursor solution according to the definition of the present invention) is spread onto a current collector. In this case, the solvent simply evaporates and the precursor solution is converted into a shaped article, without the application of an external force to impart a shape to the article. Alternatively, the forming step can be "active", in which the predetermined shape can be obtained by mechanical action, for example when a cast film of the precursor solution is dried as a solid, for example as a molded sheet.
[0059] Although the invention will be described in detail as it applies to the preparation of electrodes, battery separator coatings and membranes, it should be understood that the basic principles underlying the invention and the relative advantages of improved mechanical properties are transferable in the broadest sense to any other article obtainable according to the method of the invention.
[0060] After the precursor solution is formed, an additional subsequent step is to precipitate the polymer from the solution as a solid material, typically together with any necessary additives, if present, to obtain a molded article comprising the selected fluoropolymer of the present invention. Precipitation of the polymer to form a particular type of molded article can be obtained by any known technique typically used in the preparation of that type of article, such as evaporation of the solvent, preferably at a temperature of 60-95°C, or phase inversion by addition of a non-solvent. Precipitation of the polymer may be accompanied by precipitation of other additives and components of the precursor solution.
[0061] The deposition process which results in the production of a shaped article may be accompanied by additional steps customary in the production of said shaped articles, such as washing, forming, tensioning, stretching, calendering or other mechanical treatments.
[0062] The final step of the method of the invention is to heat treat the molded article formed in the previous step. In terms of improved mechanical properties, heat treatment at a temperature of 100°C or higher for a time of 15 minutes or more is effective. As mentioned above, the heat treatment must be carried out at a temperature comprised between 100°C and the melting point of the lowest melting fluoropolymer present in the molded article. Although 15 minutes at 100°C is shown as the minimum treatment at which the effect can be measured, it has been observed that longer treatment times and higher temperatures produce stronger effects in terms of improving the mechanical properties of the reinforced molded article of the invention. The heat treatment is most effective when carried out at a temperature above 110°C for at least 1 hour, preferably at least 2 hours, more preferably at least 3 hours. It has been found that increasing the temperature and time of heat treatment beyond a certain temperature has only a minor effect on the properties of the reinforced article.
[0063] The heat treatment is usually carried out at a temperature of 100 to 150° C., preferably 110 to 140° C., for 1 to 16 hours, preferably 1 to 12 hours, more preferably 2 to 8 hours, and even more preferably 3 to 6 hours.
[0064] Highly preferred heat treatments are carried out at temperatures between 110 and 140°C for periods between 1 and 12 hours, preferably between 2 and 8 hours, and even more preferably between 3 and 6 hours. It should be noted that lower temperatures may achieve similar effects as higher temperatures if the treatment is continued for longer. Thus, treatment times of 4 to 10 hours at 110°C are preferred, while treatment times of 2 to 6 hours at 130°C are preferred. Treatment times of more than 6 hours at 130°C or 10 hours at 110°C are unnecessary as they do not adversely affect the properties of the reinforced moulded article, but do not bring about any further improvement.
[0065] It should be understood that the heat treatment according to the invention can optionally be carried out immediately after the evaporation of the solvent. In fact, if the solvent evaporates at a temperature of 100° C. or higher, the heat treatment step according to the invention begins when the solvent has completed evaporation, i.e. when the molded part has been formed.
[0066] It is usually expected that the original properties of the fluoropolymer are maintained in the molded article obtained in step c), in particular immediately before the start of the heat treatment, the selected fluoropolymer or fluoropolymers of the invention have a gel content of less than 20% by weight, preferably less than 10% by weight, more preferably less than 5% by weight, even more preferably less than 3% by weight, based on the total amount of fluoropolymer, and a molecular weight M of at least 200 kilodaltons, preferably at least 300 kilodaltons, more preferably at least 400 kilodaltons, even more preferably at least 500 kilodaltons, most preferably at least 600 kilodaltons and at most 1400 kilodaltons, preferably at most 1300 kilodaltons, more preferably at most 1200 kilodaltons, even more preferably at most 1100 kilodaltons, most preferably at most 1000 kilodaltons, as measured by GPC against monodisperse polystyrene standards using N,N-dimethylacetamide (DMA) as solvent. w It is preferable that the formula (I) is
[0067] In an even more preferred embodiment, the inventive molded article is free of radical initiators and / or crosslinkers during heat treatment, both those remaining from the polymerization reaction and those added during the manufacture of the molded article.
[0068] The present invention will now be described in detail with a focus on its use in the manufacture of reinforced electrodes and reinforced filtration membranes.
[0069] A solvent-based electrode-forming composition (which is the "precursor solution" according to the present invention's definition) can be obtained by solubilizing one or more selected fluoropolymers of the present invention in powder form in the above-mentioned polar organic solvent to obtain a binder solution, and adding and dispersing powdered electrode materials (active materials for batteries or electric double layer capacitors) and optional additives, such as conductive additives and / or viscosity modifiers, to the binder solution. The resulting composition is typically in the form of a slurry, which is the "precursor solution" according to the present invention.
[0070] The polar organic solvents that can be used in this solvent-based electrode-forming composition and that can be used to dissolve the selected fluoropolymer to provide a binder solution according to the invention are the same solvents as those mentioned above in the general description as suitable solvents for the precursor solution.
[0071] To obtain the binder solution of the selected fluoropolymer detailed above, it is preferable to dissolve 0.1-15 parts by weight, particularly 1-10 parts by weight, of the selected fluoropolymer in 100 parts by weight of such organic solvent. Below 0.1 parts by weight, the polymer occupies too small a proportion in the solution and therefore tends to fail to demonstrate its ability to bind the powdered electrode material. Above 15 parts by weight, an abnormally high viscosity of the solution is obtained, which makes it difficult to prepare the electrode-forming composition.
[0072] To prepare the binder solution, it is preferable to dissolve one or more fluoropolymers in an organic solvent at a temperature of 20 to 99° C., more preferably 25 to 95° C., and even more preferably 50 to 90° C. If the temperature is less than 25° C., dissolution takes a long time and uniform dissolution becomes difficult.
[0073] When forming a positive electrode for a lithium ion secondary battery, the active material (powdered electrode material) may be selected from the group consisting of: - Complex metal chalcogenides of the formula LiMQ2, where M is at least one metal selected from transition metals such as Co, Ni, Fe, Mn, Cr, V, metals such as Al, and mixtures thereof, and Q is a chalcogen such as O or S. Among these, it is preferable to use lithium-based complex metal oxides of the formula LiMO2, where M is the same as defined above. Preferred examples thereof are LiCoO2, LiNiO2, LiNi x Co 1-x O2(0 <x<1)、LiNi a Co b Al c O2 (a+b+c=1) and spinel structured LiMn2O4. - Formula M1M2(JO4) f E1-f Lithiated or partially lithiated transition metal oxyanion based electroactive materials of the formula M1M2(JO4) as defined above, where M1 is lithium which may be partially replaced by another alkali metal occupying less than 20% of the M1 metal, M2 is a transition metal with an oxidation level of +2 selected from Fe, Mn, Ni or mixtures thereof which may be partially replaced by one or more further metals with an oxidation level of +1 to +5 occupying less than 35% (including 0) of the M2 metal, and JO4 is any oxyanion, where J is either P, S, V, Si, Nb, Mo or combinations thereof, E is a fluoride, hydroxide or chloride anion, and f is the mole fraction of the JO4 oxyanion typically comprised between 0.75 and 1. f E 1-f The electroactive material is preferably phosphate-based and may have an ordered or modified olivine structure.
[0074] More preferably, the active material when forming a positive electrode is of the formula Li 3-x M' y M'' 2-y (JO4)3, where 0≦x≦3 and 0≦y≦2, M′ and M″ are the same or different metals, at least one of which is a transition metal, and JO4 is preferably PO4, which may be partially replaced by another oxyanion, where J is any of S, V, Si, Nb, Mo or a combination thereof. Even more preferably, the compound (AM) has the formula Li(Fe x Mn 1-x )PO4, where 0≦x≦1, and x is preferably 1 (i.e., lithium iron phosphate of formula LiFePO4).
[0075] When forming a negative electrode for a lithium battery, the active material may be selected from the group consisting of: - carbonaceous materials (e.g. graphitic carbon) capable of intercalating lithium, usually present in the form of lithium-hosting powders, flakes, fibres or spheres (e.g. mesocarbon microbeads), - lithium metal, lithium alloy compositions, in particular those described in U.S. Pat. No. 6,203,944 (3M INNOVATIVE PROPERTIES CO.) of 20 March 2001 and / or WO 00 / 03444 (MINNESOTA MINING AND MANUFACTURING CO.) of 10 / 06 / 2005; - Generally, the formula Li4Ti5O 12 These compounds are lithium titanates having a mobile ion, i.e., Li + Lithium titanate, which is generally considered a "zero strain" insertion material, having a low level of physical expansion when receiving - Lithium-silicon alloys, commonly known as lithium silicides, with high Li / Si ratios, especially those of the formula Li 4.4 Si lithium silicide, - Formula Li 4.4 Lithium-germanium alloys containing the crystalline phase of Ge may include.
[0076] In these embodiments, the active material may preferably include a carbonaceous material such as graphite, activated carbon, etc., or a carbonaceous material obtained by carbonization such as phenolic resin, pitch, etc. The carbonaceous material may preferably be used in the form of particles having an average diameter of about 0.5 to 100 μm.
[0077] In particular, when using active materials such as LiCoO2 that exhibit limited electrical conductivity, conductivity-imparting additives may be added to improve the electrical conductivity of the resulting composite electrode layer formed by application and drying of the electrode-forming composition of the present invention. Examples of these may include: carbonaceous materials such as carbon black, graphite fine powder and fiber, and metal fine powders and fibers such as nickel and aluminum.
[0078] The active material for the electric double layer capacitor preferably has an average particle (or fiber) diameter of 0.05 to 100 μm and a fiber diameter of 100 to 3000 μm. 2The active material may comprise fine particles or fibers, such as activated carbon, activated carbon fibers, silica or alumina particles, having a specific surface area of 100 nm / g, i.e., having a relatively small particle (or fiber) diameter and a relatively large specific surface area compared to that of the active material for the battery.
[0079] A preferred electrode-forming composition for the positive electrode comprises, in terms of solids (i.e. excluding solvent), the following: (a) one or more selected fluoropolymers in a combined amount of from 1 to 10% by weight, preferably from 2 to 9% by weight, and more preferably about 3% by weight, based on the total weight of (a)+(b)+(c); (b) carbon black as a conductivity-imparting additive in an amount of 2 to 10% by weight, preferably 4 to 6% by weight, and more preferably about 5% by weight, based on the total weight of (a)+(b)+(c); (c) a powdered electrode material, preferably a complex metal chalcogenide of the general formula LiMQ2 detailed above, in an amount of 80-97 wt%, preferably 85-94 wt%, more preferably about 92 wt%.
[0080] To manufacture an electrode, the precursor solution in slurry form is typically applied by any suitable procedure, such as casting, printing or roll coating, onto at least one surface of a suitable metal substrate (typically a flat metal sheet), thereby obtaining an assembly comprising a metal substrate coated with the precursor solution on at least one surface. This assembly is then dried to remove the solvent and to precipitate the fluoropolymer in solid form, thereby obtaining the electrode coating according to the invention, which is a "molded article" that is not yet reinforced. The drying step is typically carried out at a temperature comprised between 50°C and 99°C, preferably between 80°C and 95°C, for 5 minutes to 5 hours, preferably between 30 minutes to 2 hours, typically at about 90°C for 50 minutes.
[0081] As is known in the art, additional conventional steps such as calendaring and hot pressing, typically at 80° C., may be performed on the electrode coating.
[0082] Following the drying step, the electrode coating thus obtained (the "molded article" in the sense of the present invention) is then subjected to the heat treatment of the present invention, whereby it is transformed into the reinforced molded article of the present invention. The heat treatment can be a separate, independent step or it can be an extension of the drying process, where after the solvent has been removed to form the "molded article", said molded article is exposed to the temperatures required by the present invention for a time sufficient to obtain the claimed effect. The time of the heat treatment is calculated as starting from the point at which the removal of the solvent is complete.
[0083] Preferably, for the electrode forming composition, the heat treatment is carried out at a temperature between 100° C. and 150° C. for a time period between 50 minutes and 24 hours. Exemplary effective heat treatments were 3 hours at 130° C. and 3 hours at 110° C. All heat treatments for the electrodes are preferably carried out in a vacuum.
[0084] It has been surprisingly found that subjecting an electrode coating to the heat treatment of the present invention increases the adhesion of the coating onto a metal substrate as compared to a coating of the same material that has not been subjected to the heat treatment of the present invention.
[0085] Another molded article that can be produced and reinforced using the method of the present invention is a membrane.
[0086] The term "membrane" is used herein in its ordinary sense, i.e., a discrete, usually thin, interface that moderates the permeation of chemical species in contact with the membrane. This interface may be molecularly homogeneous, i.e., perfectly uniform in structure (dense membrane), or it may be chemically or physically heterogeneous, e.g., containing voids, holes or pores of finite dimensions (porous membrane).
[0087] Porous membranes are generally characterized by their pore size distribution, average pore size and porosity, ie, the volume fraction of the entire membrane that is porous.
[0088] Membranes with a uniform structure throughout their thickness are generally known as symmetric membranes, they can be either dense or porous, and membranes with pores not uniformly distributed throughout their thickness are generally known as asymmetric membranes. Asymmetric membranes are characterized by a thin selective layer (0.1-1 μm thick) and a thicker highly porous layer (100-200 μm thick) that acts as a support and has little effect on the separation properties of the membrane.
[0089] Membranes can be in the form of flat sheets or in the form of tubes. Based on their dimensions, tubular membranes are classified into tubular membranes with a diameter of more than 3 mm, capillary membranes with a diameter comprised between 0.5 mm and 3 mm, and hollow fibers with a diameter of less than 0.5 mm. Capillary membranes are often also called "hollow fibers".
[0090] Hollow fibers are particularly advantageous in applications where a compact module with large surface area is required, whereas flat sheet membranes are generally preferred where high flux is required.
[0091] Depending on the application, the membrane may be supported to improve its mechanical resistance. The support material is generally chosen to have minimal effect on the selectivity of the membrane.
[0092] The support material may be any of a non-woven material, fiberglass and / or a polymer-based material such as polypropylene, polyethylene, polyethylene terephthalate.
[0093] A method for making a reinforced molded article according to the invention, wherein said molded article is a membrane, typically comprises the following steps: - providing said one or more fluoropolymers selected according to the invention, - dissolving said fluoropolymer in a suitable solvent and forming a precursor solution (typically called a "dope" in the membrane art), said precursor solution optionally also containing one or more pore formers and other optional additives such as salts, fillers, etc., as known in the art; - processing the precursor solution into a film; and - immersing said film in a non-solvent bath to precipitate said fluoropolymer, thereby forming a shaped article, a membrane, according to the invention.
[0094] Typically, membranes produced according to this method are then washed to remove any residual solvent and additives, and may be subjected to one or more stretching steps.
[0095] As an additional step, the membrane thus obtained (typically after washing and / or stretching if necessary) is subjected to the heat treatment described in order to obtain the reinforced membrane, which is a reinforced shaped article according to the invention. The heat treatment can be carried out while the membrane is in tension or stretched state.
[0096] The polar organic solvent used in the method is one or more of those mentioned above in the general list of solvents. Preferably, in the membrane, the solvent is N-methyl-2-pyrrolidone, N-butylpyrrolidone, dimethylformamide, N,N-dimethylacetamide, N,N-dimethylsulfoxide, hexamethylphosphamide, dioxane, tetrahydrofuran, tetramethylurea, dihydrolevoglucosenone (Cyrene®), triethyl phosphate, trimethyl phosphate or the above formula (I- de ), one or more diesters of the formula (I- ea ) and ester amides of the formula (I- da ) diamide.
[0097] Pore-forming agents are generally selected from among compounds that have solubility in polar organic solvents and non-solvent baths such that they can be at least partially removed from the membrane being formed, resulting in porosity.
[0098] It is generally understood that inorganic compounds such as lithium chloride and monomeric organic compounds including maleic anhydride can be used, however polymeric pore formers are generally preferred.
[0099] In particular, the polymeric pore former is preferably selected from the group consisting of poly(alkylene oxide) and its derivatives (POA) and polyvinylpyrrolidone (PVP).
[0100] Poly(alkylene oxide)s (PAOs) are polymers derived from polymerizing alkylene oxides, including ethylene oxide, propylene oxide, and mixtures thereof.
[0101] Derivatives of the PAOs can be obtained by reacting their hydroxyl end groups with suitable compounds to produce, in particular, ether groups, especially alkyl ethers, ester groups, such as acetates, and the like.
[0102] Nonetheless, hydroxyl end group PAOs are commonly used.
[0103] Among the PAOs, polyethylene oxide (PEO or PEG) polymers are particularly preferred.
[0104] Polyvinylpyrrolidone (PVP) is generally a homopolymer, although copolymers of vinylpyrrolidone with other monomers can also be advantageously used. Said monomers are generally selected from the group consisting of N-vinylcaprolactam, maleic anhydride, methyl methacrylate, styrene, vinyl acetate, acrylic acid, dimethylaminoethyl methacrylate. Nevertheless, PVP homopolymers are generally utilized.
[0105] The molecular weight of PVP is not particularly limited. Nevertheless, it is understood that for the purpose of processing the precursor solution into a membrane, a relatively high molecular weight of PVP is preferred. Hence, the K value of PVP, which is widely accepted as a suitable measure of its molecular weight, is generally at least 10.
[0106] When used, the total amount of pore-forming agents is usually comprised between 0.1 and 5% by weight, preferably between 0.5 and 3.5% by weight, based on the total weight of the precursor solution.
[0107] The precursor solution for making the membrane can be prepared by any conventional method. The precursor solution is typically prepared at a temperature of at least 25° C., preferably at least 30° C., more preferably at least 40° C., and even more preferably at least 50° C. The precursor solution is typically prepared at a temperature of less than 99° C., preferably less than 95° C.
[0108] The overall concentration of the selected fluoropolymer in the precursor solution should be at least 8% by weight, preferably at least 10% by weight, more preferably at least 12% by weight, based on the total weight of the precursor solution. Typically, the concentration of the selected fluoropolymer in the solution does not exceed 50% by weight, preferably does not exceed 40% by weight, more preferably does not exceed 30% by weight, based on the total weight of the precursor solution.
[0109] The mixing time required to obtain a precursor solution can vary widely depending on the proportions of the component solutions, the temperature, the efficiency of the mixing equipment, the viscosity of the precursor solution being prepared, and the like.
[0110] Any suitable mixing device can be used. Preferably, the mixing device is selected to reduce the amount of air trapped in the precursor solution, which may cause defects in the final film. The mixing of the selected fluoropolymer and the polar organic solvent can be conveniently carried out in a closed container, which is optionally kept under an inert atmosphere. It has been found that an inert atmosphere, more precisely a nitrogen atmosphere, is particularly advantageous for the preparation of the precursor solution containing PVP.
[0111] In subsequent steps the precursor solution is processed into a film as previously described.
[0112] The term "film" is used herein to mean the layer of precursor solution obtained after processing of the precursor solution. Depending on the final form of the membrane, the film can be either flat, if a flat membrane is required, or tubular in shape, if a tubular or hollow fiber membrane is to be obtained.
[0113] It will be appreciated that conventional techniques can be used to process the precursor solution into a film, with casting techniques being preferred.
[0114] Different casting techniques are used depending on the final form of the membrane to be produced: If the final product is a flat membrane, the polymer solution is cast as a film using a casting knife, drawdown bar, or preferably a slot die onto a flat support, typically a plate, belt or fabric, or onto another microporous support membrane.
[0115] Thus, in its first embodiment, the method of the present invention comprises the step of casting a precursor solution onto a support into a flat film.
[0116] Hollow fiber and capillary membranes can be obtained by the so-called wet spinning method. In such a method, the precursor solution is usually pumped through a spinneret, i.e. through an annular nozzle that contains at least two concentric capillaries, a first outer capillary for the passage of the precursor solution and a second inner capillary for the passage of a supporting fluid, commonly called the "lumen". The lumen serves as a support for the casting of the precursor solution and keeps the holes of the hollow fiber or capillary precursor open. The lumen can be gaseous or preferably liquid at the conditions of spinning of the fiber. The choice of the lumen and its temperature depends on the properties required for the final membrane, since they can have a significant effect on the size and distribution of the pores in the membrane. In general, the lumen is not a strong non-solvent for the selected fluoropolymer, or instead, the lumen contains a solvent or a weak solvent for said fluoropolymer. The lumen is typically miscible with the non-solvent of the selected fluoropolymer and with polar organic solvents.
[0117] At the exit of the spinneret, after a short residence time in air or in a controlled environment, the hollow fiber or capillary precursor is immersed in a non-solvent bath where the fluoropolymer precipitates to form the hollow fiber or capillary membrane.
[0118] Thus, in its second embodiment, the method of the present invention comprises the step of casting a precursor solution around a supporting fluid into a tubular film.
[0119] Casting of the polymer solution is usually done through a spinneret. The supporting fluid forms the holes of the final hollow fiber or capillary membrane. If the supporting fluid is a liquid, immersion of the fiber precursor in a non-solvent bath advantageously also removes the supporting fluid from the interior of the fiber.
[0120] Tubular membranes, because of their larger diameter, are manufactured using methods different from those used to manufacture hollow fiber membranes.
[0121] In its third embodiment, the method of the present invention comprises the step of casting the polymer solution onto a supporting tubular material into a tubular film.
[0122] After the processing of the precursor solution, in any of the forms detailed above, is completed to obtain a film, the film is immersed in a non-solvent bath, which is usually effective to induce precipitation of the selected fluoropolymer from the precursor solution, which then forms the final membrane structure.
[0123] As used herein, the term "non-solvent" is intended to mean a substance that is incapable of dissolving a given component of a solution or mixture.
[0124] Suitable non-solvents for the selected fluoropolymer of the invention are water and aliphatic alcohols, preferably aliphatic alcohols with short chains (e.g., 1 to 6 carbon atoms), more preferably methanol, ethanol and isopropanol. Blends of the preferred non-solvents can be used, i.e. blends comprising water and one or more aliphatic alcohols. Preferably, the non-solvent of the non-solvent bath is selected from the group consisting of water, aliphatic alcohols as defined above and mixtures thereof. Furthermore, the non-solvent bath can contain, in addition to the non-solvent (e.g., in addition to water, an aliphatic alcohol or a mixture of water and aliphatic alcohol as detailed above), a small amount (typically up to 40% by weight, usually 25 to 40% by weight, relative to the total weight of the non-solvent bath) of a solvent for the selected fluoropolymer. The use of a solvent / non-solvent mixture advantageously makes it possible to control the porosity of the membrane. The non-solvent is usually selected from among those miscible with the polar organic solvents used for the preparation of the precursor solution. Preferably, the non-solvent in the process of the invention is water. Water is the cheapest non-solvent, which can be used in large quantities.
[0125] If used, the pore-forming agent is at least partially, if not completely, removed from the membrane, typically in a non-solvent bath.
[0126] After removal from the precipitation bath, the membrane may undergo additional treatment, such as rinsing, optionally with a sodium hypochlorite solution to more completely remove the PVP pore former, after which the membrane is typically either dried or stored in a water bath.
[0127] As a further step, the membrane thus obtained (the molded article of the invention) is optionally heat treated to produce a reinforced membrane, which is a reinforced molded article according to the invention.
[0128] The present invention further relates to a membrane obtainable by the process as described above.
[0129] The membrane obtained from the method of the present invention is preferably a porous membrane. Typically, the membrane has an asymmetric structure. The porosity of the membrane may be in the range of 3 to 90%, preferably 5 to 80%.
[0130] The pores may have an average diameter of at least 0.001 μm, at least 0.005 μm, at least 0.01 μm, at least 0.1 μm, at least 1 μm, at least 10 μm and at most 50 μm.
[0131] To the extent that the disclosure of any patents, patent applications, and publications incorporated herein by reference conflicts with the statements of this application to the extent that it may render a term unclear, this statement shall control.
[0132] The present invention will now be described in more detail with reference to the following examples, which are provided solely for the purpose of illustrating the present invention and are not intended to limit the scope of the present invention. EXAMPLES
[0133] Determination of average molecular weight Molecular weight was measured by GPC. The polymer in powder form was dissolved in DMA at 0.25g / 100ml in DMA with stirring for 2 hours at 45°C in the presence of LiBr at a concentration of 0.01N in the solution. After dissolution, the solution was centrifuged at room temperature at 20000rpm for 60 minutes using a Sorvall RC-6 Plus centrifuge (rotor model: F21S-8X50Y).
[0134] The supernatant of each sample was analyzed using the instruments and conditions detailed below. Mobile phase: DMA Flow rate: 1mL / min Temperature: 45℃ Injection system: Waters 717plus Autosampler Injection volume: 200μL Pump: Waters Isocratic Pump model 515 Column: Four Water Styragel HT (300x7.5) mm, 10 μm particle size: Styragel HT-6, HT-5, HT-4, HT-3, with guard column Detector: Waters refractive index model 2414 Software for data acquisition and processing: Waters Empower.
[0135] This method generates a quantitative molecular weight curve from which M n (number average) and M w Both values (weighted average) can be calculated.
[0136] Determination of insoluble gel content A solution of fluoropolymer is prepared and centrifuged as described above in the method for "Measurement of average molecular weight". After removing the supernatant (used in the GPC method), the precipitated residue remains in the vial. The gel content is determined by weighing the residue after drying at a temperature of 150°C for 48 hours and dividing it by the weight of the entire polymer sample specimen.
[0137] Mechanical properties The mechanical properties of the membranes were evaluated at room temperature (23 °C) according to the ASTM D638 standard procedure (Type V, grip distance = 25.4 mm, initial length Lo = 21.5 mm). Five specimens of each sample were tested immediately after removal from the demineralized water used for storage.
[0138] Membrane permeability measurement Membrane permeability was measured as water flux (J), which is defined as the volume that permeates the membrane per unit area and unit time at a given pressure.
[0139] The water flux (J) is calculated using the following formula:
number
[0140] Water flux measurements were performed at room temperature with high purity MilliQ water using end geometry under a constant nitrogen pressure of 1 bar. Disks of membrane with an effective area of 11.3 cm2 were cut from the membrane sheet (stored in water) and placed on a metal grid. For each material, the flux is the average of at least 5 different disks. Flux is expressed in LMH (liters / (square meter x hour)).
[0141] Measurement of adhesive strength (for electrode-forming composition) Adhesion peel strength between aluminum foil and electrode-forming composition: To evaluate the adhesion of the dried coating layer to the Al foil, a 180° peel test was performed according to the set-up described in standard ASTM D903 at 20° C. and a speed of 300 mm / min.
[0142] Preparation of fluoropolymer F1 The fluoropolymer F1 used in the examples is a copolymer of VDF and acrylic acid containing 0.3 mol % of acrylic acid. The polymer was prepared as follows:
[0143] 13.4 liters of deionized water were introduced into a 21 liter horizontal reactor autoclave equipped with baffles and a stirrer operating at 50 rpm. The temperature was brought to 80° C. and 100 ml of a 29.4 g / l aqueous potassium iodide (KI) solution was added, after which the pressure of 38 Bar (absolute) was kept constant throughout the polymerization reaction by feeding VDF gaseous monomer. After the pressure was reached, 250 ml of a 100 g / l aqueous ammonium persulfate (APS) solution was added over 20 minutes, after which an additional amount of APS solution was added continuously at a flux rate of 60 ml / h for the entire duration of the polymerization. Furthermore, 50 ml of acrylic acid (AA) solution (50 g / l aqueous acrylic acid solution) was fed for every 250 g of monomer consumed.
[0144] When 4500 g of VDF had been fed, the gas feed was interrupted and then the pressure was reduced to 4 bar while keeping the reaction temperature constant. The final reaction time was 270 min.
[0145] The reactor was cooled to room temperature and the latex was recovered.
[0146] The final ratio (KI) / APS was 0.084 mol / mol.
[0147] The aqueous latex so obtained had a solids content of 25.2% by weight. The VDF-AA polymer was dispersed in the aqueous latex in the form of particles having an average primary size, measured according to ISO 13321, of 251 nm.
[0148] 250 mL of the latex was frozen for 48 hours, then thawed to recover the VDF-AA polymer, and the resulting powder was rinsed and dried for 12 hours at 70° C. The resulting VDF-AA polymer contained 0.3 mol % acrylic acid (AA) monomer, had a melting point of 160.8° C. (determined according to ASTM D3418), a melt viscosity MV of 57.9 kpoise (230° C. / 100 s). -1 ), an average molecular weight Mn of 254 kilodaltons and Mw of 871 kilodaltons, a gel content of <3% and the following end group contents: -CF2H: 20 mmol / kg, -CF2-CH3: 14 mmol / kg, -CH2OH: 5 mmol / kg, -CH2I: 2 mmol / kg. The amount of iodine atoms per polymer chain is 0.5.
[0149] Example 1 – Fabrication of a reinforced electrode This example illustrates the preparation of a reinforced molded article according to the present invention, which is a reinforced electrode with improved adhesion between the electrode active material and the metal current collector (Al foil).
[0150] Materials used: Active material: Lithium Nickel Manganese Cobalt Oxide LiNi 0.6 Mn 0.2 Co 0.2 O2(NMC622). Fluoropolymer: F1 above Conductive material: Carbon black SC-65
[0151] A first dispersion was prepared by premixing 34.7 g of a 6 wt % solution of fluoropolymer in NMP, 133.8 g of NMC622, 2.8 g of SC-65, and 8.8 g of additional NMP in a centrifugal mixer for 10 minutes.
[0152] The mixture was then mixed with a high speed disk impeller at 2000 rpm for 50 minutes, after which an additional 7.2 g of NMP was added to the dispersion, which was further mixed with a butterfly type impeller at 1000 rpm for 20 minutes.
[0153] The resulting composition was cast onto an Al foil having a thickness of 15 μm using a doctor blade, and the coating layer was dried in a vacuum oven for about 50 minutes at a temperature of 90° C. to obtain a positive electrode (a “molded article” according to the present invention). The thickness of the dried coating layer was about 110 μm.
[0154] The resulting molded article contains 1.5% by weight of polymer, 2% by weight of conductive additive and 96.5% by weight of active material NMC622.
[0155] The electrode thus obtained was then heat treated in an oven under vacuum at 110° C. for 3 hours to form a reinforced electrode (a “reinforced molded article” according to the present invention).
[0156] Example 2 – Fabrication of reinforced electrodes The same procedure was followed as in Example 1, except that the heat treatment was carried out at 130° C. for 1 hour.
[0157] Example 3 – Fabrication of reinforced electrodes The same procedure was followed as in Example 1, except that the heat treatment was carried out at 130° C. for 3 hours.
[0158] Example 4 – Fabrication of reinforced electrodes The same procedure was followed as in Example 1, except that the heat treatment was carried out at 130° C. for 16 hours.
[0159] Comparative Example 5 - Electrode Preparation The same procedure was followed as in Example 1, except that no heat treatment was performed.
[0160] Example 6 – Fabrication of reinforced electrodes The same procedure as in Example 1 was followed, except that LiCoO2 (LCO) was used instead of NMC622.
[0161] Example 7 – Fabrication of reinforced electrodes The same procedure was followed as in Example 2, except that LiCoO2 (LCO) was used instead of NMC622.
[0162] Example 8 – Fabrication of reinforced electrodes The same procedure was followed as in Example 3, except that LiCoO2 (LCO) was used instead of NMC622.
[0163] Example 9 – Fabrication of reinforced electrodes The same procedure was followed as in Example 4, except that LiCoO2 (LCO) was used instead of NMC622.
[0164] Comparative Example 10 - Electrode Preparation The same procedure was followed as in Comparative Example 5, except that LiCoO2 (LCO) was used instead of NMC622.
[0165] Electrode adhesion data.
[0166] [Table 1]
[0167] The data in Table 1 show that the enhanced electrodes produced in accordance with the present invention, including a heat treatment step, have much higher adhesion to metal substrates than the same electrodes produced without the heat treatment step.
[0168] Example 11 - Preparation of reinforced membrane Materials used: Fluoropolymer: F1 above N,N-Dimethylacetamide (DMAC), obtained from Sigma Aldrich Polyethylene glycol (PEG) 200, obtained from Sigma Aldrich Polyvinylpyrrolidone (PVP) K10, obtained from Sigma Aldrich Isopropyl alcohol (IPA), obtained from Sigma Aldrich
[0169] Preparation of precursor (dope) solutions: A dope solution for the preparation of porous membranes was prepared by adding 15 g of fluoropolymer 1, 10 g of PEG200 and 10.5 g of PVP to 64.5 of DMAC and stirring with a magnetic stirrer at 65° C. until completely dissolved.
[0170] Membrane preparation: A4 size flat sheet porous membranes were made by filming the above dope on a suitable smooth glass support by an automated casting knife. Membrane casting was performed by keeping the dope, casting knife and support temperatures at 25°C to prevent premature precipitation of the polymer. The knife gap was set at 250 μm. After casting, the polymer film was immediately immersed in a coagulation bath to induce phase inversion. This coagulation bath consisted of pure deionized water. After coagulation, the membrane was washed several times with pure water to remove residual traces of solvent. After washing, the membrane was heat treated at 130°C for 6 hours in an oven at atmospheric pressure. The membrane was always stored in water (wet) both before and after heat treatment.
[0171] Comparative Example 12 - Preparation of Unreinforced Membrane The same procedure was followed as in Example 11, except that no heat treatment was performed on the membrane.
[0172] Mechanical properties
[0173] [Table 2]
[0174] The data in Table 2 show that membranes produced according to the present invention including a heat treatment step have improved mechanical properties compared to the same membranes produced without the heat treatment step.
[0175] It was observed that the membranes tended to shrink during the heat treatment. The flux data also showed that the flux of the reinforced membranes was lower than that of the non-reinforced membranes. In any case, the flux of the reinforced membranes was sufficiently high for conventional applications. Without being bound by theory, it is believed that the decrease in flux may be associated with shrinkage causing a corresponding decrease in pore size. Wetting the membranes with glycerol or other wetting agents prior to heat treatment would be expected to reduce shrinkage and therefore flux loss. It is also expected that heat treatment while maintaining the membrane under tension could also reduce flux capacity loss, especially for tubular membranes.
Claims
1. A method for producing a reinforced molded article, comprising: a) providing at least one fluoropolymer having a melting point Tm, wherein the at least one fluoropolymer i) contains repeat units derived from VDF in an amount of more than 30 mol% based on the total number of repeat units of the polymer; (ii) a process characterized by having iodine-containing chain ends -CH 2 2 I in an amount of 0.1 to 0.9 per chain b) dissolving the fluoropolymer in a suitable solvent to form a precursor solution; c) precipitating the at least one fluoropolymer from the precursor solution in solid form to obtain a molded article containing the at least one fluoropolymer; e) heat-treating the molded article at a temperature between 100 °C and the lowest melting point Tm of the at least one fluoropolymer for at least 15 minutes to obtain the reinforced molded article A method comprising the steps of.
2. The method according to claim 1, wherein the at least one fluoropolymer contains repeat units derived from VDF in an amount of more than 50 mol%, more preferably more than 70 mol%, even more preferably more than 85 mol% based on the total number of repeat units of the polymer.
3. The above one or more fluoropolymers have iodine-containing chain ends -CH 2 I per chain in an amount of 0.3 to 0.7, the method according to claim 1.
4. When the above one or more fluoropolymers are measured by GPC using N,N-dimethylacetamide (DMA) as a solvent with respect to monodisperse polystyrene standard, the weight average molecular weight (M w ) is at least 200 kDa, preferably at least 300 kDa, more preferably at least 400 kDa, still more preferably at least 500 kDa, most preferably at least 600 kDa and at most 1400 kDa, preferably at most 1300 kDa, more preferably at most 1200 kDa, still more preferably at most 1100 kDa, most preferably at most 1000 kDa, and the method according to claim 1.
5. The method according to claim 1, wherein the at least one fluoropolymer contains repeat units derived from a monomer containing at least one polar group selected from the group consisting of a hydroxyl group, a carboxylic acid group, and an epoxy group, preferably a (meth)acrylic monomer.
6. The method according to claim 1, wherein the at least one fluoropolymer contains repeat units derived from a (meth)acrylic monomer in an amount of at least 0.1 mol%, preferably at least 0.2 mol% and / or at most 10 mol%, more preferably at most 7.5 mol%, even more preferably at most 5 mol%, and most preferably at most 3 mol% based on the total weight of the at least one fluoropolymer.
7. The method according to claim 1, wherein the at least one fluoropolymer contains less than 20% by weight, preferably less than 10% by weight, more preferably less than 5% by weight, even more preferably less than 3% by weight of insoluble gel based on the total weight of the at least one fluoropolymer as measured by the insoluble gel content test described herein.
8. The method according to claim 1, wherein the at least one fluoropolymer is produced by a polymerization method including an emulsion polymerization reaction in an aqueous environment in the presence of at least one radical initiator and at least one iodine-containing chain transfer agent.
9. The emulsion polymerization reaction is carried out at a molar ratio between the radical initiator and the iodine-containing chain transfer agent of at most 0.12, preferably at most 0.10, more preferably at most 0.09 and at least 0.015, preferably at least 0.03, more preferably at least 0.06, according to the method of claim 8.
10. The emulsion polymerization reaction is carried out without adding a fluorinated surfactant, according to the method of claim 8.
11. The suitable solvent is N-methyl-2-pyrrolidone, N-butylpyrrolidone, dimethylformamide, N,N-dimethylacetamide, N,N-dimethylsulfoxide, dihydrolevoglucosenone (Cyrene (registered trademark)), hexamethylphosphoramide, dioxane, tetrahydrofuran, tetramethylurea, triethyl phosphate, trimethyl phosphate, and / or The diesters of formula (I- de ), the ester amides of formula (I- ea ), and the diamides of formula (I- da ): R 1 (O=)CO-A de -OC(=O)R 2 (I- de ) R 1 O(=O)C-A ea -C(=O)NR 3 R 4 (I- ea ) R 5 R 6 N(=O)C-A da -C(=O)NR 5 R 6 (I- da ) wherein - R which are equal to or different from each other 1 and R 2 are, independently, selected from the group consisting of C 1 to C 20 hydrocarbon groups - R, which are equal to or different from each other 3 , R 4 , R 5 and R 6 are each independently selected from the group consisting of hydrogen and optionally substituted C 1 to C 36 hydrocarbon groups, and it is understood that R 3 , R 4 , R 5 and R 6 can be a cyclic moiety containing the nitrogen atom to which they are attached, which is optionally substituted and / or can be part of a cyclic moiety optionally containing one or more additional heteroatoms - A de is a C containing one or more ether oxygen atoms 3 to C 10 is a divalent alkylene group, - A, which are equal to or different from each other ea and A da each independently is a C optionally containing one or more ether oxygen atoms and / or one or more functional side groups 3 to C 10 which is a divalent alkylene group) or a mixture thereof selected from, according to the method of claim 1.
12. The heat treatment is carried out at a temperature of 100 to 150 °C, preferably 110 to 140 °C, for a time of 1 to 16 hours, preferably 1 to 12 hours, more preferably 2 to 8 hours, even more preferably 3 to 6 hours, according to the method of claim 1.
13. When the one or more fluoropolymers are contained in the molded article, before the heat treatment step, it is measured by the insoluble gel content test described herein, and is less than 20% by weight, preferably less than 10% by weight, more preferably less than 5% by weight, even more preferably less than 3% by weight, based on the total weight of the one or more fluoropolymers, of insoluble gel, and preferably, when measured by GPC using N,N-dimethylacetamide (DMA) as a solvent with respect to a monodisperse polystyrene standard, has a molecular weight Mw of at least 200 kDa, preferably at least 300 kDa, more preferably at least 400 kDa, even more preferably at least 500 kDa, most preferably at least 600 kDa and at most 1400 kDa, preferably at most 1300 kDa, more preferably at most 1200 kDa, even more preferably at most 1100 kDa, most preferably at most 1000 kDa, according to the method of claim 1.
14. An enhanced molded article obtainable by the method according to any one of claims 1 to 13, which is an electrode coating, the enhanced molded article.
15. An enhanced molded article obtainable by the method according to any one of claims 1 to 13, which is a filtration membrane, the enhanced molded article.