Multilayer Piezoelectric Film
A laminated piezoelectric film with a protective film of specific rigidity and thickness ratios addresses surface waviness issues, ensuring high rigidity, thermal stability, and improved sensitivity.
Patent Information
- Application Number
- JP2024521957
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-05-18
- Filing Date
- 2023-05-17
- Publication Date
- 2025-08-27
- Estimated Expiration
- 2043-05-17
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a laminated piezoelectric film. [Background technology]
[0002] In recent years, touch sensors have been introduced into electronic devices such as smartphones and tablets, and are being used as human-machine interfaces that enable intuitive operation. Touch sensors operate electronic devices by detecting the two-dimensional position touched by a finger or pen (see, for example, Patent Document 1).
[0003] In recent years, touch sensors that detect pressure have been developed to increase input information and improve operability. For example, there are methods for detecting pressure by measuring changes in capacitance when the housing is distorted or changes in resistance using pressure-sensitive rubber, and methods for detecting changes in the charge of piezoelectric materials. Known examples of piezoelectric films for touch panels that can also detect pressure (Z coordinate) include fluorine-based resin piezoelectrics whose main components are polyvinylidene fluoride or polyvinylidene fluoride-tetrafluoroethylene copolymer. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 5-324203 Summary of the Invention [Problem to be solved by the invention]
[0005] However, the inventors have found that in order to enhance the piezoelectricity of the fluororesin film, the film may be stretched or thermally poled. Due to the manufacturing process, piezoelectric films that have undergone these processes tend to have large waviness on the surface, resulting in reduced smoothness, compared to non-piezoelectric films such as PET. This raises the problem that in the manufacturing process of a laminate using the piezoelectric film, defects may occur during the lamination process, and the piezoelectric sensitivity of the laminate may be reduced.
[0006] After extensive research into the above problem, the inventors discovered that smoothness can be improved by laminating a protective film with high rigidity (hereinafter, the product of the tensile modulus of a film and its thickness will be referred to as "rigidity") onto the surface of the piezoelectric film.
[0007] Furthermore, in a laminated film in which the protective film is laminated onto a piezoelectric film, the surface of the piezoelectric film must be smooth (smoothness). Furthermore, heat treatment may be performed in the process of laminating a conductive layer onto the laminated film, and the laminated piezoelectric film must not curl during these heat treatments (high thermal stability) and must not wrinkle due to stress during transportation (high rigidity).
[0008] The present invention has been made in view of the above problems, and an object of the present invention is to provide a laminated piezoelectric film having high rigidity, high thermal stability, and excellent smoothness. [Means for solving the problem]
[0009] The present inventors have found that the above-mentioned problems can be solved by providing a laminated piezoelectric film with a protective film, in which the ratio B / A, where B is the stiffness of the protective film and A is the stiffness of the piezoelectric film, satisfies a specific range, and the thickness of the protective film satisfies a specific range, and have completed the present invention. Specifically, the present invention relates to the following.
[0010] The present invention relates to a laminated piezoelectric film comprising a piezoelectric film and a protective film laminated on one side of the piezoelectric film, wherein the rigidity B of the protective film is 1.0 to 20 times the rigidity A of the piezoelectric film, and the thickness of the protective film is 50 μm to 200 μm.
[0011] The thickness of the protective film is preferably 1.5 times or more the thickness of the piezoelectric film. It is preferable that the rigidity B of the protective film is 3.0 times or more and 20 times or less the rigidity A of the piezoelectric film. It is preferable that the surface roughness of the piezoelectric film on the side opposite to the side on which the protective film is laminated is 80 μm or less. The piezoelectric film preferably contains polyvinylidene fluoride as a main component. [Effects of the Invention]
[0012] According to the present invention, it is possible to provide a laminated piezoelectric film that has high rigidity, excellent thermal stability, and excellent smoothness. [Brief explanation of the drawings]
[0013] [Figure 1] 1 is a cross-sectional view schematically showing a laminated piezoelectric film 1 which is one embodiment of the laminated piezoelectric film of the present invention. [Figure 2] FIG. 2 is a cross-sectional view schematically showing a laminated piezoelectric film 2 which is another embodiment of the laminated piezoelectric film of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0014] Hereinafter, an embodiment of the present invention (hereinafter referred to as "the present embodiment") will be described in detail with reference to the drawings, but the present invention is not limited to this and various modifications are possible within the scope of the gist thereof.
[0015] In this specification, the term "laminated" means that each layer is laminated in order, and other layers may be laminated between each layer.
[0016] <Laminated piezoelectric film> The laminated piezoelectric film of the present invention is a laminated piezoelectric film comprising a piezoelectric film and a protective film laminated on one side of the piezoelectric film, wherein the rigidity B of the protective film is 1.0 to 20 times the rigidity A of the piezoelectric film, and the thickness of the protective film is 50 μm to 200 μm.
[0017] In particular, a laminated piezoelectric film with excellent thermal stability and smoothness can be easily obtained by setting the rigidity B of the protective film to be 1.0 to 20 times the rigidity A of the piezoelectric film. The rigidity of a film indicates its resistance to deformation, and it is presumed that by setting the rigidity B of the protective film and the rigidity A of the piezoelectric film within a specific range, the protective film smooths out any waviness on the surface of the piezoelectric film, thereby reducing the unevenness of the surface of the piezoelectric film and suppressing curling of the laminated piezoelectric film due to processing heat.
[0018] <Characteristics of laminated piezoelectric film, protective film, and piezoelectric film> In the laminated piezoelectric film, the rigidity B of the protective film is 1.0 to 20 times the rigidity A of the piezoelectric film, and the thickness of the protective film is 50 μm to 200 μm.
[0019] If the rigidity of the protective film is less than 1.0 times the rigidity of the piezoelectric film, it becomes difficult for the rigidity of the protective film to suppress undulations on the surface of the piezoelectric film, resulting in increased unevenness on the surface of the piezoelectric film, which is undesirable. Furthermore, from the viewpoint of production processes such as transportation and winding, the rigidity of the protective film may be 10 times or less the rigidity of the piezoelectric film. The rigidity of the protective film is preferably 1.5 to 20 times the rigidity of the piezoelectric film, more preferably 2.5 to 20 times, even more preferably 3.0 to 20 times, particularly preferably 5.0 to 15 times, and most preferably 5.0 to 10 times. A rigidity of 1.5 times or more tends to provide excellent thermal stability and smoothness. The tensile modulus of a film may vary depending on the measurement direction, but in this specification, the tensile modulus of a protective film, a piezoelectric film, and a laminated piezoelectric film means the minimum value. The tensile modulus is measured in accordance with JIS K 7127 and is a value calculated based on JIS K 7161-1, section 10.3. Specifically, it can be measured by the method described in the Examples below.
[0020] The curl height of a laminated piezoelectric film due to heating is a measure of the thermal stability of the film. The maximum height that the film reaches as it bends from the film's contact point is called the curl height, and a smaller curl height indicates higher thermal stability. The curl height is preferably 20 mm or less, more preferably 15 mm or less, and even more preferably 10 mm or less. In this specification, the curl height of the laminated piezoelectric film can be measured by the method described in the Examples below. When the degree of curl is so great that the test piece becomes cylindrical, the curl height is considered to be greater than 20 mm. The curl height of the laminated piezoelectric film can be adjusted appropriately by considering, for example, the thickness and tensile modulus of the protective film, the thickness and tensile modulus of the piezoelectric film, and the difference in the linear expansion coefficient between the protective film and the piezoelectric film.
[0021] The thickness of the laminated piezoelectric film is preferably 50 μm to 300 μm, more preferably 100 μm to 300 μm, and even more preferably 150 μm to 250 μm. When the thickness of the film is 50 μm or more, the rigidity tends to be sufficient. Furthermore, when the thickness of the film is 300 μm or less, it is preferable from the viewpoint of production processes such as transportation and winding.
[0022] The thickness of the protective film is preferably 50 μm or more and 200 μm or less, more preferably 70 μm or more and 200 μm or less, even more preferably 90 μm or more and 150 μm or less, and particularly preferably 110 μm or more and 150 μm or less. When the thickness of the protective film is 50 μm or more, it is likely to have higher rigidity and to obtain excellent thermal stability and smoothness.
[0023] The thickness of the piezoelectric film is preferably 10 μm to 200 μm, more preferably 20 μm to 200 μm, even more preferably 30 μm to 120 μm, and particularly preferably 30 μm to 80 μm. When the thickness of the film is 10 μm or more, the strength tends to be sufficient. Furthermore, when the thickness is 200 μm or less, the transparency tends to be sufficient, making it suitable for optical applications.
[0024] The thickness of the protective film is preferably 1.5 to 10 times the thickness of the piezoelectric film, and more preferably 2.0 to 10 times. If the thickness is 1.5 times or more, the rigidity of the protective film will dominate the rigidity of the laminated piezoelectric film. The protective film has not been subjected to a treatment to enhance the piezoelectricity, as is done with piezoelectric films. Therefore, the protective film has excellent thermal stability and smoothness, and the rigidity of the protective film will dominate the rigidity of the laminated piezoelectric film, making it easier for the laminated piezoelectric film to achieve excellent thermal stability and smoothness.
[0025] The tensile modulus of the protective film is preferably 1.0 GPa or more and 5.0 GPa or less, more preferably 2.0 GPa or more and 5.0 GPa or less, and even more preferably 3.0 GPa or more and 5.0 GPa or less. When the modulus is 1.0 GPa or more, the rigidity is likely to be high and excellent thermal stability and smoothness are likely to be obtained. Furthermore, from the viewpoint of production processes such as transportation and winding, the tensile modulus of the protective film may be 5.0 GPa or less.
[0026] The tensile modulus of the piezoelectric film is preferably 0.5 GPa to 3.0 GPa, more preferably 1.0 GPa to 3.0 GPa, even more preferably 1.5 GPa to 3.0 GPa, and particularly preferably 1.5 GPa to 2.0 GPa. Within the above numerical range, sufficient piezoelectricity is likely to be obtained.
[0027] The rigidity of the laminated piezoelectric film is preferably 100 N / mm to 1000 N / mm, more preferably 200 N / mm to 1000 N / mm, even more preferably 300 N / mm to 1000 N / mm, and particularly preferably 400 N / mm to 1000 N / mm. When the rigidity of the laminated piezoelectric film is 100 N / mm or more, the film is likely to have excellent thermal stability and smoothness.
[0028] The rigidity of the protective film is preferably 100 N / mm or more and 1000 N / mm or less, more preferably 150 N / mm or more and 1000 N / mm or less, even more preferably 300 N / mm or more and 1000 N / mm or less, and particularly preferably 400 N / mm or more and 1000 N / mm or less. When the rigidity of the protective film is 100 N / mm or more, a laminated piezoelectric film using the film is likely to have excellent thermal stability and smoothness.
[0029] The rigidity of the piezoelectric film is preferably 10 N / mm to 200 N / mm, more preferably 50 N / mm to 200 N / mm, and even more preferably 50 N / mm to 150 N / mm. When the rigidity of the piezoelectric film is 10 N / mm or more, a laminated piezoelectric film using the film is likely to have high piezoelectricity.
[0030] The surface roughness of the piezoelectric film on the side opposite to the side on which the protective film is laminated is preferably 80 μm or less, more preferably 60 μm or less, even more preferably 40 μm or less, and particularly preferably 30 μm or less. When the surface roughness of the film is 100 μm or less, excellent smoothness is easily obtained, reducing defects in the lamination process using the film and improving the piezoelectric sensitivity of the laminate obtained in the process. In this specification, the surface unevenness can be measured by the method described in the Examples below. The surface unevenness in this specification is a value based on the waviness and wrinkles on the surface, not on the fine irregularities on the surface. The degree of surface unevenness can be adjusted appropriately by, for example, considering the thickness and tensile modulus of elasticity of the protective film and the thickness and tensile modulus of elasticity of the piezoelectric film.
[0031] Next, each layer of the laminated piezoelectric film will be described with reference to the drawings.
[0032] 1 is a cross-sectional view schematically illustrating a laminated piezoelectric film 1, which is one embodiment of the laminated piezoelectric film. The laminated piezoelectric film 1 has a piezoelectric film 11 and a protective film 31 laminated on one surface of the piezoelectric film 11. 2 is a cross-sectional view schematically illustrating another embodiment of the laminated piezoelectric film, a laminated piezoelectric film 2. The laminated piezoelectric film 2 differs from the laminated piezoelectric film 1 in that it includes an adhesive layer 21 between the piezoelectric film 11 and the protective film 31.
[0033] <Piezoelectric film> The piezoelectric film 11 is a film (thin film) having piezoelectricity (the property of converting an applied force into a voltage, or the property of converting an applied voltage into a force).
[0034] Examples of piezoelectric film 11 include polarized polar polymer compounds that exhibit piezoelectricity by orienting molecular dipoles through a polarization process commonly known as thermal poling, and stretched chiral polymer compounds that exhibit piezoelectricity through stretching of chiral polymer compounds. Examples of polarized polar polymer compounds include fluororesins; vinylidene cyanide polymers; vinyl acetate polymers; odd-numbered nylons such as nylon 9 and nylon 11; and polyurea. Examples of stretched chiral polymer compounds include helical chiral polymer compounds such as polylactic acid; polyhydroxycarboxylic acids such as polyhydroxybutyrate; and cellulose derivatives. These can be used alone or in combination. Among these, fluororesins are preferred because they tend to reduce the surface smoothness of the piezoelectric film and therefore are more likely to exhibit the smoothness-improving effect of the present invention. When the piezoelectric film is a uniaxially stretched film, the surface smoothness tends to be low, and the smoothness improving effect of the present invention is easily exhibited. Also, when the piezoelectric film is made of a fluorine-based resin, a large degree of polarization tends to decrease the surface smoothness, and the smoothness improving effect of the present invention is easily exhibited.
[0035] Examples of fluorine-based resins include polyvinylidene fluoride (PVDF), vinylidene fluoride copolymers (for example, vinylidene fluoride / trifluoroethylene copolymer, vinylidene fluoride / trifluoroethylene / chlorotrifluoroethylene copolymer, hexafluoropropylene / vinylidene fluoride copolymer, perfluorovinyl ether / vinylidene fluoride copolymer, tetrafluoroethylene / vinylidene fluoride copolymer, hexafluoropropylene oxide / vinylidene fluoride copolymer, hexafluoropropylene oxide / tetrafluoroethylene / vinylidene fluoride copolymer, hexafluoropropylene / tetrafluoroethylene / vinylidene fluoride copolymer); tetrafluoroethylene polymers; chlorotrifluoroethylene polymers, and the like. These may be used alone or in combination of two or more. Among these, polyvinylidene fluoride or a vinylidene fluoride copolymer is preferred as the main component, and polyvinylidene fluoride is more preferred, from the viewpoints of the high piezoelectricity obtained, weather resistance, heat resistance, etc. In this specification, when the mass of a component constituting a certain polymer compound accounts for 50 mass% or more of the total mass of the polymer compound (resin) constituting the piezoelectric film, the polymer compound is referred to as the main component.
[0036] The piezoelectric film 11 may further contain commonly used additives (such as fillers and surfactants).
[0037] <Protective film> The protective film 31 is not particularly limited as long as it has the above-mentioned properties, and examples thereof include polyester resins such as polyethylene terephthalate (PET), polybutylene terephthalate (PBT), and polyethylene naphthalate (PEN); polyolefin resins such as polypropylene (PP) and polyethylene (PE); halogen-containing polymers such as polyvinyl chloride (PVC) and polyvinylidene fluoride (PVDF); acrylic polymers such as polymethyl methacrylate; and styrene polymers such as polystyrene and styrene-methyl methacrylate copolymer. Of these, PET or PP are preferred, and PET is more preferred, from the viewpoint of better achieving the effects of the present invention. Furthermore, these films are preferably biaxially stretched films.
[0038] <Adhesive layer> The laminated piezoelectric film according to the present invention may include an adhesive layer. The laminated piezoelectric film 2 includes an adhesive layer 21 between the piezoelectric film 11 and the protective film 31. That is, the piezoelectric film 11 and the protective film 31 may be bonded together with the adhesive layer 21 interposed therebetween.
[0039] The adhesive layer is not particularly limited as long as it can be easily peeled off from the piezoelectric film together with the protective film. For example, acrylic resins, and rubber-based resins such as natural rubber and synthetic rubber can be used.
[0040] <Applications of laminated piezoelectric film> After peeling off the protective film, the laminated piezoelectric film according to the present invention is suitably used in devices such as piezoelectric panels including capacitive and resistive touch panels, pressure sensors, actuators for haptic devices, piezoelectric vibration power generators, and flat speakers. The device may further include a general display panel unit such as an LCD under the piezoelectric film. The above device is suitable for use in smartphones, personal digital assistants, tablet PCs, notebook computers, medical equipment, car navigation systems, and the like.
[0041] <Method of manufacturing laminated piezoelectric film> The laminated piezoelectric film according to this embodiment can be manufactured by a method including (1) a step of manufacturing a piezoelectric film, and (2) a step of attaching a protective film.
[0042] (1) Piezoelectric film manufacturing process The method for producing the piezoelectric film is not particularly limited, and the film can be produced, for example, by the following method.
[0043] When producing a piezoelectric film containing a fluororesin, the piezoelectric film can be obtained through a process of poling a film containing a fluororesin. The film containing a fluororesin may be a stretched film or an unstretched film. In this embodiment, from the viewpoint of exhibiting a high piezoelectric effect, it is preferable to stretch the film containing a fluororesin and then perform a polarization process.
[0044] The film containing a fluororesin can be produced by any method, such as a melt extrusion method or a solution casting method. Among them, the film containing a fluororesin is preferably produced by a melt extrusion method, from the viewpoint of easily obtaining a piezoelectric film having a predetermined thickness or more. In the melt extrusion method, the fluororesin and any additives are heated and melted in the cylinder of an extruder, and then extruded through a die to obtain a film.
[0045] The obtained film has a structure in which α-type crystals (main chain has a helical structure) and β-type crystals (main chain has a planar zigzag structure) are mixed. β-type crystals have a large polarization structure. Stretching the film can convert α-type crystals into β-type crystals, and the stretching step is preferably performed as needed to convert the fluorine-based resin into β-type crystals. The stretching direction may be either the TD direction or the MD direction, with the MD direction being more preferred.
[0046] The stretching method is not particularly limited, and can be a known stretching method such as a tenter method or a drum method.
[0047] The stretching ratio can be, for example, 3.0 times or more and 6.0 times or less. When the stretching ratio is 3.0 times or more, it is easy to adjust the thickness and polarity of the film to a more appropriate range. When the stretching ratio is 3.0 times or more, the rearrangement of the β-type crystals becomes more sufficient, and not only is it easy to exhibit higher piezoelectricity, but transparency can also be further improved. When the stretching ratio is 6.0 times or less, breakage due to stretching can be further suppressed.
[0048] The resulting stretched film is subjected to a polarization treatment. The polarization treatment can be carried out, for example, by applying a DC voltage between a ground electrode and a needle-like electrode. The voltage may be adjusted depending on the thickness of the stretched film, but can be, for example, 1 kV to 50 kV.
[0049] In this manner, in this embodiment, a piezoelectric film can be obtained by polarizing a stretched film.
[0050] (2) The process of attaching the protective film The protective film may be a commercially available product or may be manufactured. From the viewpoint of improving the surface smoothness of the piezoelectric film, the protective film is preferably a film with a high tensile modulus. Specifically, protective films of the above-mentioned tensile modulus and types can be used.
[0051] The method for attaching the protective film is not particularly limited, and examples thereof include a method in which the protective film and the piezoelectric film are attached via an adhesive layer using a laminator or the like. When the protective film has self-adhesive properties, the protective film and the piezoelectric film may be attached without an adhesive layer. When an adhesive layer is used, the protective film with the adhesive layer formed thereon may be attached to the piezoelectric film, or an adhesive layer may be formed on the piezoelectric film and then the protective film may be attached. [Example]
[0052] The present invention will be further explained below with reference to examples and comparative examples, but the present invention is not limited to these examples. The properties of the laminated piezoelectric film of the present invention were measured by the following methods, and the results are shown in Table 1.
[0053] (tensile modulus) The tensile modulus of each of the piezoelectric film, protective film, and laminated piezoelectric film was measured in accordance with JIS K 7127. Test pieces were cut to 10 mm x 100 mm so that the long sides were parallel to the machine direction (MD), and measurements were performed at a tension speed of 50 mm / min and a chuck distance of 50 mm. The tensile modulus was calculated based on 10.3 of JIS K 7161-1. In addition, the tensile modulus was calculated in the same manner using test pieces cut so that the long sides were parallel to other directions such as the transverse direction (TD), but the tensile modulus in the longitudinal direction was the smallest in all Examples and Comparative Examples.
[0054] (curl height) The laminated piezoelectric film was cut into a 10 cm square test piece, which was then heat-treated by placing it in an oven set to 50°C for 1 minute. After that, the amount of lift at the four corners of the heat-treated test piece in the vertical direction was measured, and the maximum height was taken as the curl height (mm).
[0055] (Surface unevenness) The surface roughness (μm) of the laminated piezoelectric film was measured using a 3D shape measuring instrument VR-5000 (manufactured by Keyence Corporation). A test piece cut to the same size was placed on a 20 cm x 30 cm stainless steel plate (thickness 1 mm) with the piezoelectric film side facing outwards, and the centre of the long side of the test piece was held down with a magnet to avoid applying tension, and then the four corners were fixed with tape. As preprocessing, a reference plane was set using a specified area (75 mm × 140 mm) and noise reduction was set to medium. Measurements were taken by photographing the designated area with a low-magnification camera. The mode was multi-line roughness mode, the number of lines was 11, the interval was 100 lines, the area was horizontal and vertical lines, and there was no cutoff. The arithmetic mean height Ra of a total of 22 lines was calculated. The test piece was reset each time and measurements were taken three times in total, and the arithmetic mean value of the three measurements was calculated as the surface roughness.
[0056] [Examples 1-2 and Comparative Examples 1-4] A resin film (120 μm thick) made from polyvinylidene fluoride (Kureha Corporation) with an inherent viscosity of 1.1 dl / g was uniaxially stretched to a stretch ratio of 4.2. After stretching, the film was polarized by applying a DC voltage between a ground electrode and a needle-shaped electrode while increasing it from 0 kV to 12.0 kV, yielding a piezoelectric film. The polarized film was further heat-treated at 130°C for 1 minute, yielding a 40 μm-thick piezoelectric film. The tensile modulus of the piezoelectric film was 1812 MPa, and the product of thickness and tensile modulus was 72.5 N / mm. Next, a laminated film having an adhesive layer formed on a protective film as shown in Table 1 and a piezoelectric film were bonded together using a laminator, and then wound into a roll to obtain a laminated piezoelectric film. The laminator was set to a line speed of 5 m / min and a laminate roll contact pressure of approximately 0.3 N.
[0057] [Table 1]
[0058] As shown in Table 1, in the examples, the product of thickness and tensile modulus of the laminated piezoelectric film was high, the curl height was low, and the surface roughness was low. Therefore, it was confirmed that the present invention can provide a laminated piezoelectric film with high rigidity, excellent thermal stability, and smoothness. [Explanation of symbols]
[0059] 1, 2: laminated piezoelectric film, 11: piezoelectric film, 21: adhesive layer, 31: protective film
Claims
1. A laminated piezoelectric film comprising a piezoelectric film mainly composed of polyvinylidene fluoride and a protective film laminated on one surface of the piezoelectric film, the rigidity of the protective film is 1.0 to 20 times the rigidity of the piezoelectric film, The thickness of the protective film is 50 μm or more and 200 μm or less.
2. The laminated piezoelectric film according to claim 1 , wherein the thickness of the protective film is 1.5 times or more the thickness of the piezoelectric film.
3. 3. The laminated piezoelectric film according to claim 1, wherein the rigidity of the protective film is 3.0 to 20 times the rigidity of the piezoelectric film.
4. 3. The laminated piezoelectric film according to claim 1, wherein the surface roughness of the piezoelectric film on the side opposite to the side on which the protective film is laminated is 80 [mu]m or less.
Citation Information
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