Polyester-based film, method of preparing the same and its use, electrode pieces, and lithium single cell
A polyester-based film with nitrogen-containing polar groups addresses the weak bond issue in composite current collectors by enhancing surface tension and promoting stable adhesion with metal layers, improving the stability and performance of composite current collectors.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-05-15
- Publication Date
- 2026-04-08
AI Technical Summary
The bond between polymer thin films and surface metal layers in composite current collectors is weak due to low surface tension and poor affinity, leading to potential peeling issues during metal deposition.
A polyester-based film is prepared using a polyester derivative with nitrogen-containing polar groups, such as amide and amine groups, to enhance surface tension and promote strong bonding with the metal layer.
The polyester-based film with increased polar group content stabilizes surface tension over time, ensuring a robust bond with the metal layer, improving the stability and adhesion of composite current collectors.
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Abstract
Description
Technical Field
[0005]
[0001] The present invention relates to the technical field of batteries, and particularly to a polyester-based film, its preparation method and use, a pole piece, and a lithium single battery.
Background Art
[0002] Currently, composite current collectors based on polymer thin films have been widely noticed and applied in the new energy industry. Compared with conventional current collectors, composite current collectors made of polymer thin films have characteristics such as low cost, light weight, and good internal insulation. Due to these characteristics, when applied to batteries, composite current collectors made of polymer thin films can reduce the cost of the battery and improve the energy density and safety of the battery.
[0003] The preparation process of the composite current collector usually includes depositing a layer of metal material on the polymer thin film by physical vapor deposition, and the prepared thin film with a certain conductivity and a metallized surface is the composite current collector. The polymer thin film applied to the composite current collector needs to precisely control the thermal shrinkage rate, reduce the thermal influence on the base film material when the metal material is physically vapor deposited, and avoid the occurrence of quality problems such as wrinkles in the product due to thermal shrinkage.
[0004] However, in the actual preparation process of the composite current collector, the phenomenon that the bond between the polymer thin film and the surface metal layer is not strong easily occurs, which is a problem that needs to be solved urgently in the preparation process of the composite current collector.
Summary of the Invention
[0006] In embodiment 1 of the present invention, The material of the polyester base film includes a polyester derivative, and the polyester derivative includes a first polyester derivative which is one or more of polyethylene terephthalate derivatives, polybutylene terephthalate derivatives, and polyethylene naphthalate derivatives. The first polyester derivative is a derivative obtained by replacing a portion of the original diol monomer in the corresponding polyester with a diol monomer containing a nitrogen-containing polar group, wherein the nitrogen-containing polar group includes one or more of amide groups and amine groups. We provide polyester-based films.
[0007] In some examples, the molar ratio of the diol monomer containing a nitrogen-containing polar group to the original diol monomer that has not been replaced in the first polyester derivative is (0.1 to 4):1.
[0008] In some examples, the number of nitrogen-containing polar groups in the diol monomer containing the nitrogen-containing polar groups is n, and 1 ≤ n ≤ 3.
[0009] In some examples, the nitrogen-containing diol monomer is one of a chain, a saturated cyclic, or an unsaturated cyclic, and the unsaturated cyclic includes one of a benzene ring and a heterocycle.
[0010] In some examples, the nitrogen-containing diol monomer comprises one or more of the following: diethanolamine, 3-hydroxy-N-(2-hydroxyethyl)propionamide, 4-amino-1,2-butanediol, 3-dimethylamine-1,2-propanediol, and 3-amino-1,2-propanediol.
[0011] In some examples, the polyester derivative further comprises a second polyester derivative containing one or more of polyethylene terephthalate derivatives, polybutylene terephthalate derivatives, and polyethylene naphthalate derivatives, wherein the second polyester derivative is a derivative obtained by replacing a portion of the original diol monomer in the corresponding polyester with a diol monomer containing one or more polar groups selected from ether oxy groups, carboxyl groups, and phenolic hydroxyl groups.
[0012] In some examples, the second polyester derivative is a derivative obtained by replacing a portion of the original diol monomer in the corresponding polyester with a diol monomer containing one or more polar groups selected from diethylene glycol and 3-(2-hydroxyethyl)phenylethyl alcohol.
[0013] In some examples, the weight-average molecular weight of the polyester derivative is 2 to 80,000, and / or the intrinsic viscosity is 0.5 to 1.2 dL / g.
[0014] In some examples, the polyester derivative is one or more of the following: random copolymers, alternating copolymers, block copolymers, and graft copolymers.
[0015] In some examples, the polyester derivative is an alternating copolymer, or a mixture of an alternating copolymer and one or more of random copolymers, block copolymers, or graft copolymers.
[0016] In some of the embodiments, the mass of the polyester derivative in the polyester-based film is 10 wt% to 100 wt% of the polyester-based film.
[0017] In some embodiments, the polyester-based film further comprises polyester, and the polyester comprises one or more of polyethylene terephthalate, polybutylene terephthalate, and polyethylene naphthalate.
[0018] In some of these embodiments, the weight ratio of the polyester derivative to the polyester is (1 / 9 to 9):1.
[0019] In aspect 2 of the present invention, there is provided a method for preparing the polyester-based film according to aspect 1 of the present invention, which includes melt-extruding the material and then biaxially stretching to produce a polyester-based film. A method for preparing a polyester-based film is provided.
[0020] In aspect 3 of the present invention, there is provided the use of the polyester-based film according to aspect 1 of the present invention in the preparation of a composite current collector.
[0021] In aspect 4 of the present invention, there is provided a pole piece including the polyester-based film according to aspect 1 of the present invention and an electrode active material located on the polyester-based film. A pole piece is provided.
[0022] In aspect 5 of the present invention, there is provided a lithium single battery including the pole piece according to aspect 4 of the present invention. A lithium single battery is provided.
[0023] In aspect 6 of the present invention, there is provided a battery pack including the lithium single battery according to aspect 5 of the present invention. A battery pack is provided.
[0024] In aspect 7 of the present invention, there is provided an electrical device including the lithium single battery according to aspect 5 of the present invention or the battery pack according to aspect 6 of the present invention. An electrical device is provided.
Advantages of the Invention
[0025] In the polyester-based film, its preparation method and use, the electrode tab, and the lithium single battery according to the present invention, the material of the polyester-based film contains a polyester derivative, and the polyester derivative is a derivative obtained by replacing a part of the original diol-based monomer in the corresponding polyester with a diol-based monomer containing a nitrogen-containing polar group. Moreover, the nitrogen-containing polar group contains one or more of an amide group and an amine group. Using the polyester derivative as the material for preparing the polyester-based film can increase the polar group content of the polyester-based film, improve the surface tension of the polyester-based film, and enable the surface tension of the polyester-based film to be stabilized over a long period, effectively promoting a strong bond between the polyester-based film and the surface metal layer.
Embodiments for Carrying out the Invention
[0026] To facilitate the understanding of the present invention, the present invention will be described more comprehensively below. Preferred embodiments of the present invention are shown below. However, the present invention can be realized in many different forms and is not limited to the embodiments described in this specification. On the contrary, these embodiments are provided to make the understanding of the disclosure content of the present invention more thorough and comprehensive.
[0027] Unless otherwise specified, all technical and scientific terms used in this specification have the same meaning as commonly understood by those skilled in the art. In this specification, the terms used in the description of the present invention are only for explaining specific embodiments and are not for limiting the present invention. The term "and / or" used in this specification includes any and all combinations of one or more of the related listed items.
[0028] In the present invention, the open-endedly described technical features include a closed technical solution consisting of the listed features and an open technical solution including the listed features.
[0029] In this invention, "one or more combinations" means one, two, or more combinations of any of the enumerated items.
[0030] In this invention, with respect to numerical intervals, unless otherwise specified, the range is considered continuous and includes the minimum and maximum values of the range, and each value between such minimum and maximum values. Furthermore, if the range refers to an integer, it includes each integer between the minimum and maximum values of the range. Also, when multiple ranges are provided to describe features or characteristics, the ranges may be merged. In other words, unless otherwise specified, all ranges disclosed herein should be understood to include any and all subranges contained therein.
[0031] In this specification, if a unit is present only after the rightmost endpoint, it indicates that the units at the leftmost and rightmost endpoints are the same. For example, 0.5 to 1.2 dL / g indicates that the units at both the leftmost endpoint "0.5" and the rightmost endpoint "1.2" are dL / g.
[0032] As used herein, the preferred scope of “and / or,” “or / and,” and “and / or” includes any of two or more related enumerated items, as well as any and all combinations of related enumerated items, the any and all combinations of which include any two related enumerated items, any more related enumerated items, or all related enumerated items.
[0033] Currently, composite current collectors made of polymer thin films are attracting widespread attention and being applied in the new energy industry. Compared to conventional current collectors, composite current collectors made of polymer thin films have features such as lower cost, lighter mass, and better internal insulation. Due to these features, when applied to batteries, composite current collectors made of polymer thin films can reduce the cost of the battery and improve its energy density and safety.
[0034] The process of preparing a composite current collector using a polymer thin film typically involves employing a physical vapor deposition method to deposit a single layer of metal (aluminum, copper, etc.) onto a polymer thin film (e.g., polypropylene, polyethylene, polyester, etc.), thereby preparing a composite current collector with a metallic surface possessing a certain conductivity.
[0035] However, in the actual preparation process of composite current collectors, a phenomenon is likely to occur where the bond between the polymer thin film and the surface metal layer is not strong.
[0036] The applicant, through research, discovered that the cause of this problem is that commonly used polymer thin films such as polypropylene, polyethylene, and polyester have low polarity, resulting in low surface tension. This leads to poor affinity between the low-surface-tension polymer thin film and the high-surface-tension metal material, resulting in low adhesion at the interface between the two and a weak bond.
[0037] To solve this problem, a method of corona treatment of polymer thin films is usually employed to improve the surface tension of the thin film and enhance the bonding strength between the polymer thin film and the metal material. However, this method has the following shortcomings: (1) Assuming that the mechanical properties of the polymer thin film do not change significantly, the surface tension of the PET (polyethylene terephthalate) polymer thin film after corona treatment is generally between 50 and 70 mN / m, which is a limited increase compared to the surface tension of the polymer thin film before treatment (25 to 45 mN / m), and there is still a large difference compared to the surface tension of the metal material (greater than 100 mN / m). As a result, the bonding effect between the two is not ideal, and when the metal layer is peeled off after being attached with tape, a large area of the metal layer may fall off. (2) The surface tension of the polymer thin film after corona treatment is unstable, and after being stored for a while, the surface tension decreases and eventually approaches that of the polymer thin film before treatment, meaning that storage is unstable.
[0038] To solve the technical problem, the present invention provides a polyester-based film whose material may include a polyester derivative, the polyester derivative including a first polyester derivative, the first polyester derivative including one or more of polyethylene terephthalate derivatives, polybutylene terephthalate derivatives and polyethylene naphthalate derivatives, the first polyester derivative being a derivative obtained by replacing a part of the original diol monomer in the corresponding polyester with a diol monomer containing a nitrogen-containing polar group, the nitrogen-containing polar group including one or more of amide groups and amine groups.
[0039] The term "original diol monomer" refers to the diol monomer contained in the polyester corresponding to the polyester derivative. For example, if the polyester derivative is a polyethylene terephthalate derivative and / or a polyethylene naphthalate derivative, the original diol monomer means ethylene glycol. If the polyester derivative is a polybutylene terephthalate derivative, the original diol monomer means butanediol. If the polyester derivative is a polyethylene terephthalate derivative and a polybutylene terephthalate derivative, or if the polyester derivative is a polybutylene terephthalate derivative and a polyethylene naphthalate derivative, or if the monopolyester derivative is a polyester derivative containing a polyethylene terephthalate derivative, a polybutylene terephthalate derivative, and a polyethylene naphthalate derivative, the original diol monomer means butanediol and ethylene glycol.
[0040] The polyester-based film according to the present invention contains a polyester derivative as its material, the polyester derivative contains a first polyester derivative, the first polyester derivative is a derivative obtained by replacing a part of the original diol monomer in the corresponding polyester with a diol monomer containing a nitrogen-containing polar group, and the nitrogen-containing polar group contains one or more of amide groups and amine groups. By using a polyester derivative as the material for preparing the polyester-based film, the polar group content of the polyester-based film is increased, the surface tension of the polyester-based film is improved, the surface tension of the polyester-based film can be stabilized over a long period of time, and a strong bond between the polyester-based film and the surface metal layer is effectively promoted. The use of nitrogen-containing polar groups is advantageous in promoting a strong bond between the polyester-based film and the surface metal layer by coordinating with the metal through the lone pair of electrons of the N atom. In addition, amino groups have a slightly weaker hydrogen bonding force compared to hydroxyl groups, which can effectively prevent adhesion between films when the polyester-based film is wound up.
[0041] In some examples, the nitrogen-containing polar group may be located in the main chain of the diol monomer or in the side chain of the diol monomer.
[0042] In some examples, the polyester derivative further comprises a second polyester derivative, the second polyester derivative comprising one or more of polyethylene terephthalate derivatives, polybutylene terephthalate derivatives, and polyethylene naphthalate derivatives, the second polyester derivative being a derivative obtained by replacing a portion of the original diol monomer in the corresponding polyester with a diol monomer containing one or more polar groups selected from ether oxy groups, carboxyl groups, and phenolic hydroxyl groups.
[0043] In some of these embodiments, the mass content % of the polyester derivative in the polyester base film is 10 wt% to 100 wt%, and may be, for example, 10%, 33.33%, 50%, 66.67%, 75%, 80%, 83.33%, 85.71%, 87.50%, 88.89%, 90%, or 100%, and is not specifically limited. If the mass content % of the polyester derivative is smaller than this range, the number of polar groups is small, and the polarity of the last polyester base film produced is poor, resulting in a decrease in the surface tension of the polyester base film.
[0044] In some embodiments, the thickness of the polyester base film may be 2 μm to 20 μm, for example, 2 μm, 5 μm, 7 μm, 10 μm, 12 μm, 15 μm, 17 μm, or 20 μm, and is not specifically limited.
[0045] In some embodiments, the MD (longitudinal) tensile strength of the polyester-based film can reach 120 MPa to 400 MPa, the TD (transverse) tensile strength can reach 100 MPa to 350 MPa, and the elongation at break in the MD and TD directions can reach 50% to 150%.
[0046] In some embodiments, the surface tension of the polyester-based film can reach 40-100 mN / m, and after storage for 3 months, the surface tension can reach 30-80 mN / m. That is, after long-term storage, the change in the surface tension of the polyester-based film is not significant, and it can be stabilized over a long period of time.
[0047] In some examples, the surface roughness of the polyester-based film can reach 5 nm to 150 nm, and in comparative experiments involving attaching and peeling off tape, a detachment area of the polyester-based film from the metal layer of ≤0.2% indicates that the polyester-based film can bond firmly to the surface metal layer.
[0048] In some embodiments, the molar ratio of the diol monomer containing the polar group in the first polyester derivative or the second polyester derivative to the original diol monomer that has not been replaced may be (0.1 to 4):1 independently, for example, 0.1:1, 0.5:1, 1:1, 1.5:1, 2:1, 2.5:1, 3:1, 3.5:1, or 4:1, and is not specifically limited. If the molar ratio of the diol monomer containing polar groups to the original diol monomer that has not been replaced in the polyester derivative is smaller than the specified range, the surface tension of the resulting polyester-based film cannot be effectively improved. On the other hand, if the molar ratio is larger than the specified range, there are too many polar groups, which affects the mechanical properties of the resulting polyester-based film. When the molar ratio of the diol monomer containing polar groups to the original diol monomer that has not been replaced in the first or second polyester derivative is (0.1~4):1, it is advantageous to further improve the surface tension of the resulting polyester-based film without affecting the mechanical properties of the polyester-based film.
[0049] In some examples, the first polyester derivative or the second polyester derivative is a diol monomer containing polar groups, where the number of polar groups is n and 1 ≤ n ≤ 3. For example, the number of polar groups may be 1, 2, or 3, and is not specifically limited. Here, the polar groups are nitrogen-containing polar groups and may include one or more of amide groups and amine groups. When the number of polar groups in the diol monomer containing polar groups is 1 ≤ n ≤ 3, the steric hindrance of the diol monomer is reduced, facilitating polymerization reactions with carboxylic acid monomers, and effectively increasing the content of polar units in the resulting polyester base film, thereby improving the surface tension of the polyester base film.
[0050] In some embodiments, the diol monomer containing the nitrogen-containing polar group may be one of a linear, saturated cyclic, or unsaturated cyclic molecule, and the unsaturated cyclic molecule may include one of a benzene ring or a heterocycle.
[0051] In some examples, the nitrogen-containing diol monomer may include one or more of the following: diethanolamine, 3-hydroxy-N-(2-hydroxyethyl)propionamide, 4-amino-1,2-butanediol, 3-dimethylamine-1,2-propanediol, and 3-amino-1,2-propanediol.
[0052] In some embodiments, the weight-average molecular weight of the polyester derivative may be between 20,000 and 80,000, for example, 20,000, 30,000, 40,000, 50,000, 60,000, 70,000, or 80,000, and is not specifically limited.
[0053] In some embodiments, the intrinsic viscosity of the polyester derivative may be 0.5 to 1.2 dL / g, for example, 0.5 dL / g, 0.6 dL / g, 0.7 dL / g, 0.8 dL / g, 0.9 dL / g, 1.0 dL / g, 1.1 dL / g, or 1.2 dL / g, and is not specifically limited.
[0054] In some embodiments, the polyester derivative may be one or more of random copolymers, alternating copolymers, block copolymers, and graft copolymers.
[0055] In some examples, the polyester derivative may be an alternating copolymer, or a mixture of an alternating copolymer and one or more random copolymers, block copolymers, or graft copolymers. When the polyester derivative is an alternating copolymer, the distribution of the functional groups can be made more uniform, which is advantageous in promoting a strong bond between the polyester base film and the surface metal layer.
[0056] In some embodiments, the material further comprises polyester, the polyester comprising one or more of polyethylene terephthalate, polybutylene terephthalate, and polyethylene naphthalate. That is, the material can be used to prepare a polyester base film by blending at least one polyester derivative with at least one polyester. When using a material to prepare a polyester base film by blending one polyester derivative with one polyester, the polyester derivative and the polyester do not have to correspond. For example, if the adopted polyester derivative is a polyethylene terephthalate derivative, the adopted polyester may be a polyester containing one of polyethylene terephthalate, polybutylene terephthalate, and polyethylene naphthalate.
[0057] In some embodiments, the weight ratio of the polyester derivative to the polyester may be (1 / 9 to 9):1, and may be, for example, 1 / 9:1, 0.5:1, 1:1, 2:1, 3:1, 4:1, 5:1, 6:1, 7:1, 8:1, or 9:1, and is not specifically limited. In some embodiments, preparing a polyester base film using a mixture of polyester derivative and polyester in a weight ratio of (1 / 9 to 9):1 is advantageous in further improving the surface tension of the polyester base film and does not affect the mechanical properties of the polyester base film.
[0058] The present invention further provides a method for preparing the polyester-based film described above, which includes preparing the polyester-based film by melt-extruding the material and then biaxially stretching it.
[0059] Furthermore, melt extrusion and biaxial stretching are the melt extrusion and biaxial stretching methods commonly used in this field.
[0060] In the present invention, when a polyester-based film is prepared using a polyester derivative or a mixture of a polyester derivative and polyester, the MD (longitudinal) stretching ratio can reach 1:(3~8), the TD (longitudinal) stretching ratio can reach 1:(3~8), the MD (longitudinal) stretching speed can reach 30~80 times / min, and the TD (longitudinal) stretching speed can reach 50~200 times / min.
[0061] When preparing polyester-based films using polyester derivatives or mixtures of polyester derivatives and polyester, there is no need for post-polarization treatment of the thin film, making the process simple and easy to produce industrially.
[0062] The present invention further provides the use of the above-mentioned polyester-based film in the preparation of composite current collectors. By preparing a composite current collector using the polyester-based film according to the present invention as a substrate, the problem of insufficient bonding between the polymer thin film and the surface metal layer in the composite current collector can be effectively solved, and the stability of the composite current collector can be improved.
[0063] In some embodiments, composite current collectors can be prepared by employing the following methods.
[0064] Composite anode current collector: First, for the preparation of the metal conductive layer, a polyester base film is placed in a vacuum deposition chamber, and high-purity copper wire (purity greater than 99.99%) in the metal evaporation chamber is melted and evaporated at a high temperature of 1400-2000°C. The evaporated metal atoms are deposited on both surfaces of the polyester base film via a cooling system in the vacuum deposition chamber, forming a 1 μm thick copper metal conductive layer. Next, for the preparation of the protective layer, 1 g of graphene is uniformly dispersed in 999 g of N-methylpyrrolidone (NMP) solution by ultrasonic dispersion, and this is mixed into a coating solution with a solid content of 0.1 wt.%. Then, the coating solution is uniformly applied to the surface of the metal conductive layer by a die-coating process, with the coating amount controlled to 80 μm, and finally dried at 100°C.
[0065] The present invention further provides an electrode piece comprising the polyester-based film and an electrode activator positioned on the polyester-based film.
[0066] The present invention further provides a lithium single cell including the above-mentioned electrode piece.
[0067] The present invention further provides a battery pack including the above-mentioned lithium single cell.
[0068] The present invention further provides an electrical device including the above-mentioned lithium single cell or battery pack.
[0069] The polyester-based film according to the present invention, its preparation method, and its use will be described in detail below with reference to specific examples.
[0070] In the following examples, PET refers to polyethylene terephthalate, PBT refers to polybutylene terephthalate, and PEN refers to polyethylene naphthalate. [Examples]
[0071] (1) Preparation of polyester base film for composite current collector with high peel strength
[0072] Resin selection: Two parts by weight of PET resin with an intrinsic viscosity of 0.60 dL / g and eight parts by weight of PET derivative with an intrinsic viscosity of 0.70 dL / g were selected and the materials were blended. The PET derivative used was a random copolymer, and a portion of the ethylene glycol in the PET derivative was replaced with diethylene glycol, resulting in a molar ratio of 3:7 between diethylene glycol and ethylene glycol.
[0073] A polyester-based film was prepared using a process of biaxial stretching after melt extrusion. The stretching process involved a stretch ratio of 1:4 in the MD direction and 1:6 in the TD direction. A biaxially stretched polyester thin film with a final thickness of 8 μm was produced. The thin film had a tensile strength of 200 MPa in the MD direction and 180 MPa in the TD direction, with elongation at break of 80% or more in both directions.
[0074] (2) A composite current collector was prepared using the composite current collector preparation method described above. [Examples]
[0075] (1) Preparation of polyester base film for composite current collector with high peel strength
[0076] Resin Selection: A blend was created by selecting 9 parts by weight of PBT resin with an intrinsic viscosity of 0.9 dL / g and 1 part by weight of a PET derivative with an intrinsic viscosity of 0.55 dL / g. The PET derivative used was a graft copolymer, and a portion of the ethylene glycol in the PET derivative was replaced with diethanolamine, resulting in a molar ratio of 1:1 between diethanolamine and ethylene glycol.
[0077] A polyester-based film was prepared using a process of melt extrusion followed by biaxial stretching. The stretching process involved a stretch ratio of 1:4 in the MD direction and 1:6 in the TD direction. A biaxially oriented polyester thin film with a final thickness of 8 μm was produced. The thin film exhibited a tensile strength of 300 MPa in the MD direction and 280 MPa in the TD direction, with elongation at break exceeding 120% in both directions.
[0078] (2) A composite current collector was prepared using the composite current collector preparation method described above. [Examples]
[0079] (1) Preparation of polyester base film for composite current collector with high peel strength
[0080] Resin Selection: The materials were blended by selecting 1 part by weight of PEN resin with an intrinsic viscosity of 0.7 dL / g, 5 parts by weight of PEN derivative with an intrinsic viscosity of 0.5 dL / g, and 4 parts by weight of PBT derivative with an intrinsic viscosity of 0.9 dL / g. In this blend, the PEN derivative used was an alternating copolymer, with a portion of the ethylene glycol in the PEN derivative replaced with 3-hydroxy-N-(2-hydroxyethyl)propionamide, and the molar ratio of 3-hydroxy-N-(2-hydroxyethyl)propionamide to ethylene glycol was 2:1. The PBT derivative used was a block copolymer, with a portion of the butanediol in the PBT derivative replaced with 3-(2-hydroxyethyl)phenylethyl alcohol, and the molar ratio of 3-(2-hydroxyethyl)phenylethyl alcohol to butanediol was 3:1.
[0081] A polyester-based film was prepared using a process of melt extrusion followed by biaxial stretching. The stretching process involved a stretch ratio of 1:4.5 in the MD direction and 1:5 in the TD direction. A biaxially oriented polyester thin film with a final thickness of 7.5 μm was produced. The thin film exhibited a tensile strength of 190 MPa in the MD direction and 160 MPa in the TD direction, with elongation at break exceeding 80% in both directions.
[0082] (2) A composite current collector was prepared using the composite current collector preparation method described above. [Examples]
[0083] (1) Preparation of polyester base film for composite current collector with high peel strength
[0084] Resin Selection: A blend of materials was performed by selecting 3 parts by weight of a PET derivative with an intrinsic viscosity of 0.8 dL / g, 3 parts by weight of a PEN derivative with an intrinsic viscosity of 0.6 dL / g, and 4 parts by weight of a PBT derivative with an intrinsic viscosity of 1.2 dL / g. In this blend, the PET derivative used was a random copolymer, with a portion of the ethylene glycol in the PET derivative replaced by diethylene glycol, resulting in a molar ratio of 0.1:1 between diethylene glycol and ethylene glycol. The PEN derivative used was a graft copolymer, with a portion of the ethylene glycol in the PEN derivative replaced by diethanolamine, resulting in a molar ratio of 4:1 between diethanolamine and ethylene glycol. The PBT derivative used was a block copolymer, with a portion of the butanediol in the PBT derivative replaced by 3-(2-hydroxyethyl)phenylethyl alcohol, resulting in a molar ratio of 2.5:1 between 3-(2-hydroxyethyl)phenylethyl alcohol and butanediol.
[0085] A polyester-based film was prepared using a process of melt extrusion followed by biaxial stretching. The stretching process involved a stretch ratio of 1:4.5 in the MD direction and 1:5 in the TD direction. A biaxially oriented polyester thin film with a final thickness of 6 μm was produced. The thin film exhibited a tensile strength of 210 MPa in the MD direction and 180 MPa in the TD direction, with elongation at break exceeding 80% in both directions.
[0086] (2) A composite current collector was prepared using the composite current collector preparation method described above. [Examples]
[0087] (1) Preparation of polyester base film for composite current collector with high peel strength
[0088] Resin Selection: A blend of materials was performed by selecting 5 parts by weight of a PET derivative with an intrinsic viscosity of 0.85 dL / g and 5 parts by weight of a PEN derivative with an intrinsic viscosity of 0.85 dL / g. In this blend, the PET derivative used was a random copolymer, with a portion of the ethylene glycol in the PET derivative replaced by diethylene glycol, resulting in a molar ratio of diethylene glycol to ethylene glycol of 0.5:1. The PEN derivative used was a block copolymer, with a portion of the ethylene glycol in the PEN derivative replaced by diethanolamine, resulting in a molar ratio of diethanolamine to ethylene glycol of 3.5:1.
[0089] A polyester-based film was prepared using a process of melt extrusion followed by biaxial stretching. The stretching process involved a stretch ratio of 1:4.5 in the MD direction and 1:5 in the TD direction. A biaxially oriented polyester thin film with a final thickness of 5.5 μm was produced. The thin film exhibited a tensile strength of 250 MPa in the MD direction and 220 MPa in the TD direction, with elongation at break exceeding 100% in both directions.
[0090] (2) A composite current collector was prepared using the composite current collector preparation method described above. [Examples]
[0091] The only difference between Example 6 and Example 1 was that a polyester-based film was prepared using only 10 parts by weight of a PET derivative with an intrinsic viscosity of 0.70 dL / g; everything else was the same. The thin MD-direction tensile strength of the obtained film was 160 MPa, the TD-direction tensile strength was 120 MPa, and the elongation at break in both directions was 100% or more. Comparative Example 1
[0092] The only difference between Comparative Example 1 and Example 1 was that the polyester-based film was prepared using only PET resin with an intrinsic viscosity of 0.60 dL / g (10 parts by weight); everything else was the same. The thin MD-direction tensile strength of the obtained film was 200 MPa, the TD-direction tensile strength was 180 MPa, and the elongation at break in both directions was 100% or more. Comparative Example 2
[0093] The difference between Comparative Example 2 and Example 1 is that a polyester-based film was prepared using only 10 parts by weight of PET resin with an intrinsic viscosity of 0.60 dL / g, and the polyester-based film was prepared by the corona method. The obtained film had a thin MD tensile strength of 200 MPa and a TD tensile strength of 180 MPa, and the elongation at break in both directions was 100% or more. Comparative Example 3
[0094] The only difference between Comparative Example 3 and Example 1 was that a portion of the ethylene glycol in the PET derivative was replaced with diethylene glycol, and the molar ratio of diethylene glycol to ethylene glycol was 0.05:1; everything else was the same. The thin MD-direction tensile strength of the obtained film was 250 MPa, the TD-direction tensile strength was 220 MPa, and the elongation at break in both directions was 100% or more. Comparative Example 4
[0095] The only difference between Comparative Example 4 and Example 1 was that a portion of the ethylene glycol in the PET derivative was replaced with diethylene glycol, and the molar ratio of diethylene glycol to ethylene glycol was 5:1; everything else was the same. The resulting film had a thin MD tensile strength of 100 MPa and a TD tensile strength of 90 MPa, with elongation at break exceeding 150% in both directions. The mechanical strength was too weak to meet the requirements of the subsequent current collector preparation process.
[0096] Performance Test Surface tension and surface roughness tests were performed on the polyester-based films prepared in Examples 1-6 and Comparative Examples 1-4 using an atomic force microscope, and the results are shown in Table 1.
[0097] [Table 1]
[0098] The adhesive strength performance of the composite current collectors prepared in Examples 1-6 and Comparative Examples 1-3 was evaluated. The evaluation method involved adhering a 200 mm long, 15 mm wide 3M Scotch tape (Type 600 or 610) to the metal layer on the surface of the composite current collector, rolling the sample back and forth twice at a speed of 10 mm / s using a roller, then peeling off the tape at a speed of 100 mm / min at a 60-degree angle, and finally statistically analyzing the area occupancy rate of the metal peeled off by the tape. The results are shown in Table 2.
[0099] [Table 2]
[0100] As can be seen from the results in Tables 1 and 2, the surface tension and surface roughness of the polyester-based films prepared in Examples 1 to 6 were significantly improved, storage stability was enhanced, the adhesive strength between the polyester-based film and the metal layer was significantly improved, and the films were suitable for preparing composite current collectors by depositing metal onto the surface. When a polyester-based film is prepared using at least one polyester derivative, or when a polyester-based film is prepared using a mixture of polyester derivative and polyester in a weight ratio of (1 / 9 to 9):1, and the molar ratio of the diol monomer containing polar groups in the polyester derivative to the original diol monomer that has not been replaced is (0.1 to 4):1, the surface tension and surface roughness of the polyester-based films produced using different stretching process parameters were significantly improved, the surface tension of the polyester-based film could be stabilized over a long period of time, and the strong bonding between the polyester-based film and the surface metal layer was effectively promoted, making the films suitable for preparing composite current collectors.
[0101] As can be seen from the results in Tables 1 and 2, the raw materials used to prepare the polyester-based films in Examples 2 to 5 contain at least one polyester derivative, which is obtained by replacing a portion of the original diol monomer in the corresponding polyester with a nitrogen-containing polar group diol monomer. Therefore, even if the polyester derivative in the polyester-based film is 10% by mass, the prepared polyester-based film can have good surface tension and surface roughness, and its storage is stable.
[0102] As can be seen from the results of Examples 1-2, 6, and 3-5, when the raw materials for preparing the polyester base film contain at least two polyester derivatives, the surface tension and surface roughness of the prepared polyester base film are both superior to those of the polyester base film prepared when the raw materials contain only one polyester derivative. Furthermore, the surface tension and surface roughness of the polyester base film prepared when the raw materials are a mixture of one polyester derivative and at least one polyester are superior to those of the polyester base film prepared when the raw materials contain only one polyester derivative.
[0103] As can be seen from the results of Examples 1, 6 and Comparative Examples 1-2, when a polyester-based film was prepared using only polyester, both the surface tension and surface roughness of the prepared polyester-based film were poor. Even when a polyester-based film was prepared using polyester as the material in a corona process, the improvement in the surface tension and surface roughness of the prepared polyester-based film was limited, and the surface tension of the polyester-based film could not be stabilized over a long period of time, resulting in poor adhesion performance between the polyester-based film and the metal layer. It was found that by using a polyester derivative in which a portion of the original diol monomer is replaced with a diol monomer containing polar groups as the material for preparing the polyester-based film, the polar group content of the polyester-based film was increased, the surface tension of the polyester-based film was improved, and the surface tension of the polyester-based film could be stabilized over a long period of time, effectively promoting a strong bond between the polyester-based film and the surface metal layer.
[0104] As can be seen from the results of Example 1, Comparative Example 3, and Comparative Example 4, when the molar ratio of diethylene glycol to ethylene glycol in the PET derivative is 3:7, the surface tension and surface roughness of the prepared polyester base film are both superior to those of the polyester base film prepared when the molar ratio of diethylene glycol to ethylene glycol in the PET derivative is 0.05:1. Furthermore, the polyester base film prepared when the molar ratio of diethylene glycol to ethylene glycol in the PET derivative is 5:1 cannot further satisfy the requirement for preparing a current collector, that is, it affects the mechanical performance of the prepared polyester base film. It was found that when the molar ratio of the diol monomer containing polar groups in the polyester derivative to the original diol monomer that has not been replaced is (0.1~4):1, it is advantageous to further improve the surface tension of the prepared polyester base film and does not affect the mechanical performance of the polyester base film.
[0105] The technical features of the embodiments described above can be combined in any way, and for the sake of brevity, not all possible combinations of the technical features in the embodiments described above have been explained. However, as long as these combinations of technical features are not contradictory, they should all be considered to fall within the scope described herein.
[0106] The above-described embodiments illustrate only a few aspects of the present invention, and while their descriptions are relatively specific and detailed, this should not be understood as limiting the scope of the patent. It should be noted that, provided that those skilled in the art do not deviate from the spirit of the invention, several modifications and improvements can be made, and all of these should be considered to fall within the scope of protection of the present invention. Therefore, the scope of protection of the patent for the present invention should be in accordance with the attached claims.
Claims
1. The material of the polyester base film includes a polyester derivative, and the polyester derivative includes a first polyester derivative which includes one or more of the following: polyethylene terephthalate derivative, polybutylene terephthalate derivative, and polyethylene naphthalate derivative. The first polyester derivative is a derivative obtained by replacing a portion of the original diol monomer in the corresponding polyester with a diol monomer containing a nitrogen-containing polar group, wherein the nitrogen-containing polar group includes one or more of amide groups and amine groups. The polyester derivative further comprises a second polyester derivative containing one or more of polyethylene terephthalate derivatives, polybutylene terephthalate derivatives, and polyethylene naphthalate derivatives. The second polyester derivative is a derivative obtained by replacing a portion of the original diol monomer in the corresponding polyester with a diol monomer containing one or more polar groups selected from an etheroxy group, a carboxyl group, and a phenolic hydroxyl group. Polyester-based film.
2. In the first polyester derivative, the molar ratio of the diol monomer containing a nitrogen-containing polar group to the original diol monomer that has not been replaced is (0.1 to 4):
1. The polyester-based film according to feature 1.
3. The polyester-based film according to claim 1, characterized in that the number of nitrogen-containing polar groups in the diol monomer containing the nitrogen-containing polar groups is n and 1 ≤ n ≤ 3.
4. The polyester-based film according to claim 1, characterized in that the diol monomer containing the nitrogen-containing polar group is one of a linear, saturated cyclic, and unsaturated cyclic, and the unsaturated cyclic includes one of a benzene ring and a heterocycle.
5. The polyester-based film according to any one of claims 1 to 4, characterized in that the diol monomer containing the nitrogen-containing polar group comprises one or more of the following: diethanolamine, 3-hydroxy-N-(2-hydroxyethyl)propionamide, 4-amino-1,2-butanediol, 3-dimethylamine-1,2-propanediol, and 3-amino-1,2-propanediol.
6. The polyester-based film according to claim 1, characterized in that the weight-average molecular weight of the polyester derivative is 20,000 to 80,000, and / or the intrinsic viscosity is 0.5 to 1.2 dL / g.
7. The polyester-based film according to claim 1, characterized in that the polyester derivative is one or more of random copolymers, alternating copolymers, block copolymers, and graft copolymers.
8. The polyester-based film according to claim 7, characterized in that the polyester derivative is an alternating copolymer, or a mixture of an alternating copolymer and one or more random copolymers, block copolymers, or graft copolymers.
9. The polyester-based film according to claim 1, characterized in that the second polyester derivative is a derivative obtained by replacing a portion of the original diol monomer in the corresponding polyester with a diol monomer containing one or more polar groups selected from diethylene glycol and 3-(2-hydroxyethyl)phenylethyl alcohol.
10. The polyester base film according to claim 1, characterized in that the mass of the polyester derivative in the polyester base film is 10 wt% to 100 wt% of the polyester base film.
11. The polyester-based film according to claim 1, wherein the material of the polyester-based film further contains polyester, and the polyester contains one or more of polyethylene terephthalate, polybutylene terephthalate, and polyethylene naphthalate.
12. The polyester-based film according to claim 11, characterized in that the weight ratio of the polyester derivative to the polyester is (1 / 9 to 9):
1.
13. A method for preparing a polyester-based film according to Claim 1, This includes the process of producing a polyester-based film by melt-extruding the material and then biaxially stretching it. Method for preparing polyester-based films.
14. Use of the polyester-based film according to Claim 1 in the preparation of a composite current collector.
15. An electrode piece characterized by comprising a polyester base film according to Claim 1 and an electrode activator located on the polyester base film.
16. A lithium single cell characterized by including the electrode piece described in claim 15.
17. A battery pack characterized by including a lithium single cell as described in claim 16.
18. An electrical device characterized by including a lithium single cell according to claim 16, or a battery pack according to claim 17.
Citation Information
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