Refraction-resistant polyester film and its manufacturing method
A polyester film with a specific chemical structure and biaxial stretching process addresses bending issues in flexible display panels, maintaining clarity and durability through enhanced bending resistance and recovery.
Patent Information
- Application Number
- JP2022065737
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-04-23
- Filing Date
- 2022-04-12
- Publication Date
- 2025-12-15
- Estimated Expiration
- 2042-04-12
AI Technical Summary
Conventional materials used in flexible display panels, such as PET, exhibit poor resistance to bending, leading to visible bending marks over time, which affect aesthetics and image clarity.
A polyester film composition with a chemical structure featuring overlapping units of polybasic acid, diol, and modifying monomers like BPEF, BPF, BCF, or BAF, providing excellent bending resistance and recovery elasticity, combined with a biaxial stretching process and a hard coating for protection.
The polyester film maintains clarity without refraction marks even after frequent bending, ensuring long-term optical performance and durability.
Smart Images

Figure 0007785602000001 
Figure 0007785602000002 
Figure 0007785602000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a polyester film used in a flexible display panel. [Background technology]
[0002] Conventional display panels are made of rigid materials and are used in computer monitors, mobile phones, televisions, tablets, etc. With the development of science and technology, bendable display panels have also become available. Bendable display panels have more applications, such as being used in bicycles and interior decoration, and can also be installed in smaller spaces. Furthermore, bendable display panels can be adjusted to the optimal viewing angle according to the user's field of view, making them convenient to use in daily life.
[0003] Patents WO2016021746A1 and US9061474B2 disclose colorless PI (polyimide) technology, which is an excellent material for use in flexible panels. Colorless PI is a material with excellent bending resistance, tear strength, heat resistance, and chemical resistance, making it physically applicable to flexible panels. While colorless PI already has improved color compared to general PI, it has the problem of being slightly yellowish compared to PET (polyethylene terephthalate). Furthermore, colorless PI's high price has limited its use as a protective window for flexible display panels. Summary of the Invention [Problem to be solved by the invention]
[0004] Considering cost and optical properties, PET is another material used for protective windows in flexible display panels. PET is often used for optical films due to its competitive cost and excellent transparency and color. The film technology disclosed in patents TW201833198A and TW201842006A is an example of using PET for protective windows in flexible display panels. However, while PET has excellent optical properties and low cost, it has poor resistance to bending. When used on a flexible panel for a long period of time, the PET film gradually develops bending marks as the number of bending increases, which not only negatively impacts aesthetics but also the clarity of the image when viewed by the user.
[0005] The present invention provides a polyester film that has excellent optical properties and refraction resistance, and does not show refraction marks even after long-term refraction.
[0006] The present invention provides a polyester composition that has excellent resistance to bending and recovery elasticity upon bending by introducing a chemical structure with an elastic three-dimensional structure, and therefore does not show any bending traces even when bent more frequently.
[0007] The present invention provides a method for producing a polyester composition that can be used to produce a film with excellent refraction resistance. [Means for solving the problem]
[0008] The polyester composition of the present invention has overlapping units composed of at least one polybasic acid and at least one diol, and at least one modifying monomer having the following formula (1): [Formula (1)] JPEG0007785602000001.jpg47145Here, R1 and R2 are independently reactive functional groups such as an amino group, a hydroxy group, or a hydroxyalkoxy group having 1 to 8 carbon atoms. R1 and R2 are preferably independently amino groups, hydroxy groups, or hydroxyethoxy groups. R3 and R4 are independently hydrogen atoms or aliphatic functional groups such as alkyl groups having 1 to 8 carbon atoms. R3 and R4 are preferably independently hydrogen atoms, methyl groups, or ethyl groups.
[0009] In one embodiment, the polyester composition provided by the present invention has a glass transition temperature of 75 to 95°C and a melting point of 230 to 255°C.
[0010] In one embodiment, the modifying monomer in formula (1) is selected from the following compounds:
[0011] The compound is 9,9-bis[4-(2-hydroxyethoxy)phenyl]fluorene / bisphenoxyethanolfluorene (hereinafter referred to as BPEF) shown in structural formula (I). [Structural formula (I)] TIFF0007785602000002.tif47145Here, R1 and R2 are hydroxyethoxy groups, and R3 and R4 are hydrogen atoms.
[0012] It is 9,9-bis(4-hydroxyphenyl)fluorene / bisphenolfluorene (hereinafter referred to as BPF) represented by structural formula (II). [Structural formula (II)] TIFF0007785602000003.tif47145Here, R1 and R2 are hydroxyl groups, and R3 and R4 are hydrogen atoms.
[0013] The compound is 9,9-bis(4-hydroxy-3-methylphenyl)fluorene / biscresolfluorene (hereinafter referred to as BCF) represented by structural formula (III). [Structural formula (III)] TIFF0007785602000004.tif47145Here, R1 and R2 are hydroxyl groups, and R3 and R4 are methyl groups.
[0014] The compound is 9,9-bis(4-aminophenyl)fluorene / bisanilinefluorene (hereinafter referred to as BAF) represented by structural formula (IV). [Structural formula (IV)] TIFF0007785602000005.tif47145Here, R1 and R2 are amino groups, and R3 and R4 are hydrogen atoms.
[0015] In addition to the modifying monomers having the elastic steric chemical structure represented by structural formulas (I) to (IV), the present invention also includes, but is not limited to, ester precursors of BPEF, BPF, BCF, and BAF. The ester precursor is an intermediate formed before the reacting monomer completes the esterification reaction and has a molecular weight of 1,000 or less. This intermediate can form an ester with an esterification rate of 95% or more after the esterification reaction or transesterification reaction, and this ester can be polymerized to become a polyester.
[0016] In one embodiment, the modifying monomer of formula (1) in the polyester composition according to the present invention is 0.1 to 10 mol %, preferably 0.5 to 7.5 mol %, of the total amount of the polybasic acid, or 0.1 to 10 mol %, preferably 0.5 to 7.5 mol %, of the total amount of the diol.
[0017] In one embodiment, the polybasic acid of the polyester composition of the present invention may be an aliphatic dicarboxylic acid, an aromatic dicarboxylic acid, a polyfunctional carboxylic acid, or an ester precursor thereof. The aliphatic dicarboxylic acid may include, but is not limited to, succinic acid, glutaric acid, adipic acid, pimelic acid, octanedioic acid, azelaic acid, sebacic acid, or 1,4-cyclohexanedicarboxylic acid. The aromatic dicarboxylic acid may include, but is not limited to, terephthalic acid, isophthalic acid, or 2,6-naphthalenedicarboxylic acid. The polyfunctional carboxylic acid may include, but is not limited to, 1,2,4-benzenetricarboxylic acid or 1,2,4,5-benzenetetracarboxylic acid. Alternatively, the polybasic acid of the polyester composition of the present invention may be an ester of the above polybasic acid.
[0018] In one embodiment, the diol in the polyester composition of the present invention includes, but is not limited to, an aliphatic diol or its esterified precursor. For example, ethylene glycol, diethylene glycol, 1,3-propylene glycol, 1,4-butanediol, neopentyl glycol, 1,4-cyclohexanedimethanol, or a high molecular weight aliphatic diol such as polyethylene glycol or polytetramethylene ether glycol having a molecular weight of 150 to 20,000 g / mol. The molecular weight in the present invention may be the number-average molecular weight, mass-average molecular weight, or viscosity-average molecular weight, with mass-average molecular weight being preferred.
[0019] In one embodiment, the polyester composition according to the present invention has the following structural formula (V): [Structural formula (V)] TIFF0007785602000006.tif47145Here, R' is O, NH or OC2H4, and x+y=1, x=0.9 to 0.999, y=0.001 to 0.1, and R3 and R4 are the same as defined above.
[0020] The present invention also provides a polyester sheet comprising the polyester composition.
[0021] In one embodiment, the polyester sheet is extruded by an extruder at a temperature of 230 to 300° C., and has a thickness of 200 to 800 μm.
[0022] The present invention also provides a polyester film produced from the polyester sheet, having a thickness of 20 to 200 μm. The polyester sheet is further biaxially stretched 1.5 to 5 times in the transverse direction (TD, a direction perpendicular to the extrusion direction of the polyester sheet) and 1.5 to 5 times in the machine direction (MD, the extrusion direction of the polyester sheet) to produce a refractive index-resistant polyester film having a thickness of 20 to 200 μm. The machine direction is the long axis direction of the sheet, and the transverse direction is the short axis direction of the sheet.
[0023] In one embodiment, the polyester film further comprises a hard coating applied to the surface of the polyester film, the hard coating having a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 1H (1 kgf), as determined by ASTM D1003.
[0024] In one embodiment, the hard coating of the polyester film may have a pencil hardness of up to 3H (500 g load) or up to 1H (1 kg load) as measured according to JIS K5600-5-4:1999.
[0025] In one embodiment, the polyester film shows no signs of refraction even after being bent 200,000 to 300,000 times at a bending radius of 0.5 to 3 mm. The hard coating is primarily intended to protect the refraction-resistant polyester film from scratches and abrasions.
[0026] The present invention also provides a method for producing a polyester film, comprising the steps of: (1) extruding the polyester composition into a polyester sheet at a temperature of 230 to 300°C; (2) biaxially stretching the polyester sheet to produce a polyester film; and (3) applying a hard coating to the surface of the polyester film.
[0027] In one embodiment, the biaxial stretching process stretches the polyester sheet 1.5 to 5 times along the minor axis direction and the major axis direction of the polyester sheet, and the minor axis direction and the major axis direction are perpendicular to each other. DETAILED DESCRIPTION OF THE INVENTION
[0028] In order to make the technical features and advantages of the present invention more clear, the present invention will be described in detail with specific examples, but the present invention can be realized in various forms and is not limited to these examples. On the contrary, the examples provided by the present invention are intended to make the disclosure of the present invention more complete and thorough so that those skilled in the art can understand and realize the present invention.
[0029] Unless otherwise specified, all technical and scientific terms in the present invention are defined in accordance with the common understanding of those skilled in the art. When a specific numerical value is mentioned, a variation of 1% or less from the specific numerical value is also included. For example, when referring to the number "100", the reference also includes "99" and "101", as well as rational and irrational numbers therebetween (e.g., 99.1, 99.2, 99.321, 99.45, 99.5, 99.8789, etc.).
[0030] Polyester composition One embodiment of the present invention provides a polyester composition having overlapping units composed of a polybasic acid and a diol, and a modifying monomer having a flexible steric structure and having the following formula (1): [Formula 1] JPEG0007785602000007.jpg47145
[0031] In the formula (1), R1 and R2 are independently an amino group, a hydroxy group, or a hydroxyalkoxy group having 1 to 8 carbon atoms (-OC n H 2n-OH, n = 1, 2, 3, 4, 5, 6, 7, or 8), such as hydroxymethoxy, hydroxyethoxy, hydroxy-n-propoxy, hydroxyisopropoxy, hydroxy-n-butoxy, hydroxyisobutoxy, hydroxy-2-butoxy, hydroxy-3-butoxy, hydroxylylbutoxy, hydroxy-n-pentyloxy, hydroxyisopentyloxy, hydroxyneopentyloxy, hydroxycyclopentyloxy, hydroxyterpentyloxy, hydroxymethylbutoxy, hydroxymethylpropoxy, hydroxybutylpropoxy, hydroxy-n-hexyloxy, hydroxyisohexyloxy, hydroxycyclohexyloxy, hydroxy-n-heptyloxy, hydroxyisoheptyloxy, hydroxy-n-octyloxy, or hydroxyisooctyloxy. R1 and R2 are preferably independently an amino group, a hydroxy group, or a hydroxyethoxy group. R3 and R4 are independently a hydrogen atom or an alkyl group having 1 to 8 carbon atoms, such as a methyl group, an ethyl group, an n-propyl group, an isopropyl group, an n-butyl group, a 2-methylpropyl group (isobutyl group), an s-butyl group, a t-butyl group, a cyclobutyl group, an n-pentyl group, an isopentyl group, an s-pentyl group, a t-pentyl group, a neopentyl group, a 2-methylbutyl group, a 1,2-dimethylpropyl group, a 1-ethylpropyl group, a cyclopentyl group, an n-hexyl group, R3 and R4 are preferably independently a hydrogen atom, a methyl group, or an ethyl group. The polyester composition of this example has a glass transition temperature of 75 to 95°C and a melting point of 230 to 255°C.In the polyester composition of this example, it is preferable that the overlapping unit of the polyester composed of a polybasic acid and a diol is 90.0 to 99.0 mol %.
[0032] In one embodiment, R1 and R2 in the formula (1) are independently an amino group, a hydroxy group, or a hydroxyethoxy group, and R3 and R4 are independently a hydrogen atom, a methyl group, or an ethyl group.
[0033] For example, in the polyester composition of this embodiment, the modifying monomer may be 9,9-bis[4-(2-hydroxyethoxy)phenyl]fluorene (BPEF), 9,9-bis(4-hydroxyphenyl)fluorene (BPF), 9,9-bis(4-hydroxy-3-methylphenyl)fluorene (BCF), 9,9-bis(4-aminophenyl)fluorene (BAF), or an esterified precursor thereof, as shown in the following structural formulas (I) to (IV). This modifying monomer has an elastic three-dimensional structure, which provides excellent bending resistance and recovery upon bending. BPEF: TIFF0007785602000008.tif47145BPF: TIFF0007785602000009.tif47145BCF: TIFF0007785602000010.tif47145BAF: TIFF0007785602000011.tif47145
[0034] In one embodiment, the modifying monomer of the polyester composition of this example is 0.1 to 10 mol% of the total amount of polybasic acid or diol contained in the polyester composition, for example, 0.1 mol%, 0.2 mol%, 0.3 mol%, 0.4 mol%, 0.5 mol%, 0.6 mol%, 0.7 mol%, 0.8 mol%, 0.9 mol%, 1.0 mol%, 1.1 mol%, 1.2 mol%, 1.3 mol%, 1.4 mol%, 1.5 mol%, 1.6 mol%, 1.7 mol%, 1.8 mol%, 1.9 mol%, 2.0 mol%, 2.1 mol%, 2.2 mol%, 2.3 mol%, 2.4 mol%, 2.5 mol%, 2.6 mol%, 2.7 mol%, 2.8 mol%, 2.9 ...1 mol%, 2.2 mol%, 2.3 mol%, 2.4 mol%, 2.5 mol%, 2.6 mol%, 0.2 mol%, 2.3 mol%, 2.4 mol%, 2.5 mol%, 2.6 mol%, 2.7 mol%, 2.8 mol%, 2.9 mol%, 3.0 mol%, 3.5 mol%, 4.0 mol%, 4.5 mol%, 5.0 mol%, 5.5 mol%, 6.0 mol%, 6.5 mol%, 7.0 mol%, 7.5 mol%, 8.0 mol%, 8.5 mol%, 9.0 mol%, 9.5 mol% or 10.0 mol%, or 0.1 to 10 mol%, 0.2 to 10 mol%, 0.3 to 10 mol%, 0.4 to 10 mol%, 0.5 to 10 mol%, 0.6 ~10mol%, 0.7~10mol%, 0.8~10mol%, 0.9~10mol%, 1.0~10mol%, 1.1~10mol%, 1.2~10mol%, 1.3~10mol%, 1.4~10mol%, 1.5~10mol%, 1.6~10mol%, 1.7~10m ol%, 1.8~10mol%, 1.9~10mol%, 2.0~10mol%, 2.1~10mol%, 2.2~10mol%, 2.3~10mol%, 2.4~10mol%, 2.5~10mol%, 2.6~10mol%, 2.7~10mol%, 2.8~10mol%, 2.9 to 10 mol%, 3.0 to 10 mol%, 3.5 to 10 mol%, 4.0 to 10 mol%, 4.5 to 10 mol%, 5.0 to 10 mol%, 5.5 to 10 mol%, 6.0 to 10 mol%, 6.5 to 10 mol%, 7.0 to 10 mol%, 7.5 to 10 mol%, 8.0 to 10 mol%, 8.5 to 10 mol%, 9.0 to 10 mol% or 9.5 to 10 mol%, or 0.1 to 9.9 mol%, 0.1 to 9.8 mol%, 0.1 to 9.7 mol%, 0.1 to 9.6 mol%, 0.1 to 9.5 mol%, 0.1 to 9.4 mol%, 0.1 to 9.3mol%, 0.1~9.2mol%, 0.1~9.1mol%, 0.1~9.0mol%, 0.1~8.9mol%, 0.1~8.8mol%, 0.1~8.7mol%, 0.1~8.6mol%, 0.1~8.5mol%, 0.1~8.4m ol%, 0.1~8.3mol%, 0.1~8.2mol%, 0.1~8.1mol%, 0.1~8.0mol%, 0.1~7.9mol%, 0.1~7.8mol%, 0.1~7.7mol%, 0.1~7.6mol%, 0.1~7.5mol% , 0.1 to 7.4 mol%, 0.1 to 7.3 mol%, 0.1 to 7.2 mol%, 0.1 to 7.1 mol%, 0.1 to 7.0 mol%, 0.1 to 6.5 mol%, 0.1 to 6.0 mol%, 0.1 to 5.5 mol%, 0.1 to 5.0 mol%, 0.1 to 4.5 mol%, 0.1 to 4.0 mol%, 0.1 to 3.5 mol%, 0.1 to 3.0 mol%, 0.1 to 2.5 mol%, 0.1 to 2.0 mol%, 0.1 to 1.5 mol%, 0.1 to 1.0 mol%, or 0.1 to 0.5 mol%. The modifying monomer in the polyester composition of this embodiment is preferably 0.5 to 7.5 mol% of the total amount of polybasic acid or diol in the polyester composition.
[0035] In one embodiment, the polybasic acid of the polyester composition of this example includes an aliphatic dicarboxylic acid, an aromatic dicarboxylic acid, a polyfunctional carboxylic acid, or an ester precursor thereof, such as, but not limited to, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, 1,4-cyclohexanedicarboxylic acid, or an ester precursor formed from the aliphatic dicarboxylic acid. The aromatic dicarboxylic acid includes, but is not limited to, terephthalic acid, isophthalic acid, 2,6-naphthalenedicarboxylic acid, or ester precursors formed from the aromatic dicarboxylic acid. The polyfunctional carboxylic acid includes 1,2,4-benzenetricarboxylic acid, 1,2,4,5-benzenetetracarboxylic acid, or ester precursors formed from 1,2,4-benzenetricarboxylic acid or 1,2,4,5-benzenetetracarboxylic acid.
[0036] In one embodiment, the diol of the polyester composition of this example includes an aliphatic diol or its ester precursor. The aliphatic diol is, for example, ethylene glycol, diethylene glycol, 1,3-propylene glycol, 1,4-butanediol, neopentyl glycol, 1,4-cyclohexanedimethanol, or an ester precursor formed from the aliphatic diol. Furthermore, the aliphatic diol of this example may be polyethylene glycol, polytetramethylene ether glycol, or an ester precursor thereof, each having a molecular weight of 150 to 20,000 g / mol.
[0037] The polyester composition of this example preferably has the following structural formula (V). [Structural formula (V)] TIFF0007785602000012.tif43144 Here, R' is O, NH, or OC2H4, and x+y=1, where x=0.9 to 0.999, and y=0.001 to 0.1.
[0038] The methods for producing the polyester compositions of the present invention and various properties (including, but not limited to, thermal and / or optical properties) are described in detail in the following examples. For example, the polyester compositions of the present invention are formed by a polymerization process in which a polybasic acid, a diol, and a modifying monomer are esterified with or without a catalyst and additives to form a low molecular weight ester, followed by a liquid phase polymerization reaction to produce a high molecular weight ester product.
[0039] Polyester sheet In another embodiment of the present invention, a polyester sheet is provided. The polyester sheet is produced from the polyester composition provided in the above embodiment, and a detailed production method will be described later. In one embodiment, the thickness of the polyester sheet of this embodiment is 200 to 800 μm.
[0040] Polyester film and its manufacturing method In another embodiment of the present invention, a polyester film is provided, which is a polyester film produced from a polyester sheet containing the polyester composition provided in the previous embodiment. A detailed production method will be described later. The polyester film has excellent refraction resistance and optical properties, and does not show refraction marks even after multiple refractions over a long period of time, thereby maintaining clarity when viewed.
[0041] In another embodiment of the present invention, there is also provided a method for producing a polyester film, comprising the steps of: (1) extruding the polyester composition into a polyester sheet at a temperature of 230 to 300°C; (2) biaxially stretching the polyester sheet to produce a polyester film; and (3) applying a hard coating to the surface of the polyester film. In one embodiment, the biaxial stretching stretches the polyester sheet 1.5 to 5 times along the minor axis and major axis directions of the polyester sheet, respectively, where the minor axis and major axis directions are perpendicular to each other.
[0042] For example, the polyester composition provided in the above examples can be melt-extruded to produce a polyester sheet and then biaxially stretched to produce a polyester film. The resulting polyester film has excellent refractive index and optical properties, and can be hard-coated or not depending on the application.
[0043] To facilitate understanding of the present invention, the esterification reaction, catalysts and additives used in the production process, liquid phase polymerization reaction, polyester film production process, and hard coating production process mentioned in the above examples will be described in detail below.
[0044] Esterification Reaction The "esterification" of the present invention is an esterification reaction carried out mainly between reactive functional groups of carboxylic acids, ester precursors of carboxylic acids, alcohols, and ester precursors of alcohols.
[0045] Specifically, 1 mol of a carboxylic acid or its ester precursor is added to 1 to 1.4 mol of an alcohol or its ester precursor in this proportion to produce a slurry, which is then used as a reactant for the esterification reaction to carry out a continuous dehydration esterification reaction. This esterification reaction is carried out in one or more reactors connected to a fractional column at a reaction temperature of 225 to 255°C and a pressure of 380 to 2000 torr or in an atmospheric environment, preferably a nitrogen atmosphere. Water released during the esterification reaction is collected at the top of the fractional column, and the alcohol or its ester precursor from the reaction is condensed in the fractional column and recycled to the reactor, ultimately forming an esterified product with a molecular weight of about 200 to about 5,000 g / mol. This esterification reaction can be carried out without the addition of a catalyst or additive, but the esterification reaction can also be improved by adding a catalyst or additive. The low molecular weight esterified product obtained in the esterification reaction is then used as a reactant in a liquid-phase polymerization reaction.
[0046] polymerization catalyst In order to improve the reaction rate, productivity and product quality of the liquid phase polymerization reaction, a polymerization catalyst can be added to the liquid phase polymerization reaction, which is mainly a metal catalyst, including but not limited to antimony and its oxides, organic salts, acetate salts, tin and its organic salts, titanium and its organic salts, germanium and its oxides or organic salts.
[0047] additives As long as the effects of the polyester composition of the present invention are not affected, commercially available additives such as heat stabilizers, antioxidants, UV absorbers, or IR absorbers may be added according to actual needs.
[0048] Liquid Phase Polymerization In the liquid phase polymerization described herein, the precursor obtained by the esterification reaction is heated and decompressed in the presence of the polymerization catalyst to obtain a high molecular weight product. During the liquid phase polymerization, excess alcohol in the reaction mixture is removed.
[0049] The liquid phase polymerization reaction can be carried out in one or more reactors. For example, in the case of one reactor, the liquid phase polymerization reaction is carried out at a reaction temperature of 250 to 290°C, in a vacuum environment where the pressure is reduced to about 0.01 to about 0.5 Torr, and with stirring under the addition of a polymerization catalyst.
[0050] In the two-reactor system, the first stage liquid-phase polymerization reaction is carried out at a reaction temperature of 250-290°C and a pressure of 0.5 to 150 Torr. After the first stage reaction has stabilized for a predetermined time, the reactants are transferred to the second stage. The second stage polymerization reaction is completed at a reaction temperature of 250-290°C and a pressure of 0.01 to 0.5 Torr.
[0051] In the case of multiple reactors, the polymerization reaction process can be divided into multiple steps according to needs, and in the last reactor, the polymerization reaction is completed in a vacuum environment where the reaction temperature is 250-290°C and the pressure is reduced to 0.01-0.5 Torr.
[0052] Polyester film manufacturing process In the following examples, all samples are made into films having similar thicknesses so that each example can be compared with the others, but this does not mean that the techniques of the present invention are applicable only to films of that thickness.
[0053] The polyester film manufacturing process mainly involves melt-extruding the polyester pellets from the different examples using a single-screw extruder at a processing temperature of melting point temperature + 25°C, followed by cooling on a cooling roll to produce sheets with a thickness of 450-500 μm. Each sheet is then heated at a temperature of glass transition temperature + 20°C for 30 seconds, and then biaxially stretched to 3 times its original size in the TD and MD directions to produce a film with a thickness of 50 μm.
[0054] Hard Coating Manufacturing Process Depending on the application, a hard coating may be applied to the film. This hard coating is primarily intended to protect the anti-reflection polyester film from scratches and abrasions. Different applications will result in different properties and physical characteristics of the hard coating. The following examples illustrate hard coatings for two different applications, but the coatings mentioned in these examples are not limited to these. Regardless of the application, it is preferred that the hard coating used meet the following specifications: transmittance of 90% or greater, haze of 2% or less, and hardness of 1H (1 kgf) or greater than 3H (500 gf).
[0055] The core technology of the present invention will be described below with reference to examples. However, the present invention is not limited to these specific examples. The specific examples given in the present invention are merely for the convenience of explaining the present invention, and the technology of the present invention can be applied to similar products with the same concept. Although any methods and materials similar or equivalent to those described above can be used in the practice or testing of the embodiments of the present invention, the preferred methods and materials are described herein. All publications mentioned herein are incorporated by reference in their entirety. [Example]
[0056] [Comparative Example 1] 34.6 kg of terephthalic acid and 14.2 kg of ethylene glycol are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After the intrinsic viscosity (IV) reached 0.62 dL / g, the cooled product was removed from the reaction tank to produce polyester pellets (hereinafter referred to as "polyester pellets"). The polyester pellets had a melting point of approximately 252°C and a glass transition temperature of approximately 79.3°C.
[0057] [Example 1] 33.6 kg of terephthalic acid, 13.6 kg of ethylene glycol, and 1.3 kg of BPEF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 248.1°C and a glass transition temperature of about 83.1°C.
[0058] [Example 2] 32.6 kg of terephthalic acid, 13.2 kg of ethylene glycol, and 2.2 kg of BPEF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 245.9°C and a glass transition temperature of about 85.7°C.
[0059] [Example 3] 31.5 kg of terephthalic acid, 12.4 kg of ethylene glycol, and 4.2 kg of BPEF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 239.6°C and a glass transition temperature of about 90.4°C.
[0060] [Example 4] 33.8 kg of terephthalic acid, 13.7 kg of ethylene glycol, and 1.1 kg of BPF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 247.9°C and a glass transition temperature of about 82.8°C.
[0061] [Example 5] 33.2 kg of terephthalic acid, 13.3 kg of ethylene glycol, and 1.8 kg of BPF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 245.6°C and a glass transition temperature of about 84.8°C.
[0062] [Example 6] 33.7 kg of terephthalic acid, 13.7 kg of ethylene glycol, and 1.2 kg of BCF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 248.2°C and a glass transition temperature of about 82.4°C.
[0063] [Example 7] 33.2 kg of terephthalic acid, 13.3 kg of ethylene glycol, and 1.9 kg of BCF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 246.9°C and a glass transition temperature of about 85.1°C.
[0064] [Example 8] 33.8 kg of terephthalic acid, 13.7 kg of ethylene glycol, and 1.1 kg of BAF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 248.4°C and a glass transition temperature of about 82.3°C.
[0065] [Example 9] 33.3 kg of terephthalic acid, 13.4 kg of ethylene glycol, and 1.7 kg of BAF are charged into a reaction tank, heated to 245°C, and stirred to carry out an esterification reaction. After the esterification reaction, 24 g of magnesium acetate, 15.6 g of triethyl phosphonoacetate, and 13.2 g of antimony trioxide are charged and mixed, and the pressure is reduced from 760 Torr to 0.1 Torr within 30 minutes while stirring to carry out a polymerization reaction. After reaching an IV of 0.62 dl / g, the cooled product is removed from the reaction tank to produce polyester pellets, which have a melting point of about 245.2°C and a glass transition temperature of about 84.6°C.
[0066] The properties and components of the polyester pellets prepared with the different formulations are shown in Table 1.
[0067] [Table 1]
[0068] As can be seen from Table 1, increasing the amount of BPEF added increases the glass transition temperature, resulting in increased energy consumption during the subsequent stretching process. Furthermore, the melting point decreases, gradually converting the polyester composition to an amorphous polyester, potentially resulting in reduced dimensional stability of the resulting processed product. At the same time, increasing the amount of BPEF added also slightly increases the b value in the CIELAB color space. This means that with increased addition, the polyester becomes slightly yellowish, but still meets the transparency requirements for optical films. When similar modifying monomers (BPF, BCF, or BAF) are added, the resulting polyester exhibits similar thermal properties to those of BPEF-added polyesters.
[0069] Comparative Example 2 Using the polyester pellets of Comparative Example 1, a film was produced according to the polyester film production process. SilFORT 7800G (manufactured by Momentive) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film. The coating had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 1H (1 kgf).
[0070] Comparative Example 3 Using the polyester pellets of Comparative Example 1, a film was produced according to the polyester film production process. KCF-5501A (manufactured by Seiko PMC) was applied to the surface of the film and cured with UV light to form a hard coating. The coating had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 3H (500 gf).
[0071] [Example 10] Using the polyester pellets of Example 1, a film was produced according to the polyester film production process, and SilFORT 7800G (manufactured by Momentive) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film, which had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 1H (1 kgf).
[0072] [Example 11] Using the polyester pellets of Example 1, a film was produced according to the polyester film production process. KCF-5501A (manufactured by Seiko PMC) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film. The transmittance of this coating was 90% or more, the haze was 2% or less, and the hardness was greater than 3H (500 gf).
[0073] [Example 12] Using the polyester pellets of Example 2, a film was produced according to the polyester film production process described above, and SilFORT 7800G (manufactured by Momentive) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film, which had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 1H (1 kgf).
[0074] [Example 13] Using the polyester pellets of Example 2, a film was produced according to the polyester film production process described above, and then KCF-5501A (manufactured by Seiko PMC) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film. The coating had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 3H (500gf).
[0075] [Example 14] Using the polyester pellets of Example 5, a film was produced according to the polyester film production process described above, and SilFORT 7800G (manufactured by Momentive) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film, which had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 1H (1 kgf).
[0076] [Example 15] The polyester pellets of Example 7 were used to produce a film according to the polyester film manufacturing process described above, and SilFORT 7800G (manufactured by Momentive) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film, which had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 1H (1 kgf).
[0077] [Example 16] Using the polyester pellets of Example 9, a film was produced according to the polyester film production process described above, and SilFORT 7800G (manufactured by Momentive) was applied to the surface of the film and cured with UV light to form a hard coating on the surface of the film, which had a transmittance of 90% or more, a haze of 2% or less, and a hardness of greater than 1H (1 kgf).
[0078] The refraction resistance test involves bending a polyester film 100,000 to 300,000 times at a frequency of 1 time per second with a radius of 0.5 to 6 mm, and observing the presence of cracks or signs of refraction. Specifically, a polyester film is first cut into a sample measuring 2 cm wide and over 15 cm long, and both sides of the sample are clamped. The clamps are spaced 10 cm apart, and the clamps are attached to a fixed rail and movable horizontally, with one clamp fixed and the other movable back and forth. When the refraction resistance test begins, the two clamps rotate from horizontal to vertical, and the reciprocating clamp moves toward the non-moving clamp until the two clamps reach a distance of 0.5 to 6 mm. The polyester film is then bent 100,000 to 300,000 times at a frequency of 1 time per second with a radius of 0.5 to 6 mm. The test results are then observed with the naked eye and a microscope to determine whether there are any signs of refraction. The results are shown in Table 2. If there is no trace of refraction when observed with the naked eye and no trace of refraction when observed with a microscope, it is marked with a "○". If there is no trace of refraction when observed with the naked eye and a very small trace of refraction when observed with a microscope, it is marked with a "△". If there is a trace of refraction when observed with the naked eye, it is marked with an "X".
[0079] [Table 2]
[0080] As can be seen from Table 2, the bending resistance of the product sheet improves with increasing proportion of the modifying monomer. When the proportion of the modifying monomer reaches a certain value, the bending resistance can meet the requirement of 200,000 bending times at a bending radius of 1 mm.
[0081] The results of testing the heat shrinkage and dimensional stability of the film according to the ASTM D1204 test standard are shown in Table 3. Regarding the heat shrinkage of the film, if the heat shrinkage along the MD direction is 0.8% or less, or the heat shrinkage along the TD direction is 0.4% or less, the film has excellent usability and is marked with a "○" (e.g., Example 1). Increasing the proportion of the modifying monomer also changes the crystallinity of the polyester, which also affects the heat shrinkage of the film. Increasing the proportion of the modifying monomer also improves the heat shrinkage. If the heat shrinkage along the MD direction is 0.8-1.0% or the heat shrinkage along the TD direction is 0.4-0.5%, the film is unsuitable for subsequent applications and is marked with a "△" (e.g., Example 3). Regarding dimensional stability, if the corner warp is 1.5 mm or less, the film has excellent dimensional stability and is marked with a "○" (e.g., Example 1). When the corner warpage is 1.5 to 2.0 mm, the dimensional stability of the film is poor, as indicated by a "△" mark, for example, Example 3. As can be seen from Table 3, when the ratio of the modifying monomer is high, there is a problem of poor dimensional stability of the film.
[0082] [Table 3]
[0083] The above description is a specific description of the preferred embodiments of the present invention, but these embodiments do not limit the scope of the claims of the present invention, and the present invention can be completed by making modifications and changes equivalent to the effects of these embodiments based on the gist of the present invention. These modifications and changes should be included in the scope of the claims of the present invention.
Claims
1. a repeating unit consisting of at least one polybasic acid and at least one diol; and at least one modifying monomer represented by formula (1), the modifying monomer is 1.5 to 2.5 mol % of the total amount of the diol; wherein R1 and R2 are independently an amino group, a hydroxy group, or a hydroxyalkoxy group having 1 to 8 carbon atoms; R3 and R4 are independently a hydrogen atom or an alkyl group having 1 to 8 carbon atoms; The glass transition temperature is 75 to 95°C, the diol comprises an aliphatic diol or an esterified precursor thereof; The aliphatic diol comprises polyethylene glycol or polytetramethylene ether glycol having a molecular weight of 150 to 20,000 g / mol. Polyester composition.
2. 2. The polyester composition according to claim 1, wherein the hydroxyalkoxy group is a hydroxyethoxy group.
3. 2. The polyester composition according to claim 1, wherein the alkyl group is a methyl group or an ethyl group.
4. 2. The polyester composition according to claim 1, wherein the melting point is 230 to 255°C.
5. 2. The polyester composition of claim 1, wherein the modifying monomer is 9,9-bis[4-(2-hydroxyethoxy)phenyl]fluorene (BPEF), 9,9-bis(4-hydroxyphenyl)fluorene (BPF), 9,9-bis(4-hydroxy-3-methylphenyl)fluorene (BCF), 9,9-bis(4-aminophenyl)fluorene (BAF), or an esterified precursor thereof.
6. 2. The polyester composition of claim 1, wherein the polybasic acid comprises an aliphatic dicarboxylic acid, an aromatic dicarboxylic acid, a polyfunctional carboxylic acid, or an esterified precursor thereof.
7. 7. The polyester composition of claim 6, wherein the aliphatic dicarboxylic acid comprises succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, or 1,4-cyclohexanedicarboxylic acid.
8. 7. The polyester composition according to claim 6, wherein the aromatic dicarboxylic acid comprises terephthalic acid, isophthalic acid, or 2,6-naphthalenedicarboxylic acid.
9. 7. The polyester composition of claim 6, wherein the polyfunctional carboxylic acid comprises 1,2,4-benzenetricarboxylic acid or 1,2,4,5-benzenetetracarboxylic acid.
10. 2. The polyester composition of claim 1, wherein the aliphatic diol comprises ethylene glycol, diethylene glycol, 1,3-propylene glycol, 1,4-butanediol, neopentyl glycol, or 1,4-cyclohexanedimethanol.
11. A polyester composition comprising the polyester composition according to any one of claims 1 to 10. Polyester sheet.
12. 12. The polyester sheet according to claim 11, which has a thickness of 200 to 800 μm.
13. 12. A polyester sheet according to claim 11, Polyester film.
14. 14. The polyester film according to claim 13, which has a thickness of 20 to 200 μm.
15. 14. The polyester film according to claim 13, wherein a hard coating is applied to a surface of the polyester film, and the hard coating has a transmittance of 90% or more, a haze of 2% or less, and a hardness of 1H (1 kgf) or more, as measured according to ASTM D1003.
16. (1) extruding the polyester composition according to any one of claims 1 to 10 into a polyester sheet at a temperature of 230 to 300°C; (2) biaxially stretching the polyester sheet to produce a polyester film; (3) applying a hard coating to the surface of the polyester film; A method for producing polyester film.
17. The method for producing a polyester film according to claim 16, characterized in that the biaxial stretching process stretches the polyester sheet 1.5 to 5 times along the minor axis direction and the major axis direction of the polyester sheet, respectively, and the minor axis direction and the major axis direction are perpendicular to each other.
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