Coating film-equipped member and method for manufacturing same
By applying a temperature differential during the coating and drying process, the method addresses the challenge of creating films with varying thicknesses, enhancing the peeling efficiency of cultured cell sheets.
Patent Information
- Application Number
- PCT/JP2024/042007
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-01-25
- Filing Date
- 2024-11-27
- Publication Date
- 2025-07-31
AI Technical Summary
Conventional spin coating methods struggle to intentionally form patterns with partially different thicknesses on the surface of a coating film due to the uniform wetting and spreading of the coating material, making it difficult to create desired surface patterns.
A method involving a temperature difference is applied to the surface of a member, followed by a coating and drying process, resulting in a coating film with a surface pattern that has varying thicknesses based on the temperature differential.
Enables the formation of a coating film with intentional thickness differences, facilitating easier peeling of cultured cell sheets from culture dishes by promoting adhesion at thinner areas and peeling at thicker areas.
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Figure JP2024042007_31072025_PF_FP_ABST
Abstract
Description
Coated member and method of manufacturing the same
[0001] This application claims priority to Japanese Patent Application No. 2024-009816, filed on January 25, 2024, the contents of which are incorporated herein by reference.
[0002] In recent years, with the advancement of regenerative medicine, various culture dishes for culturing cell sheets have been developed. Furthermore, to properly detach the cultured cell sheet from the culture dish, a temperature-responsive polymer coating is formed on the inner surface of the culture dish. It is desirable for the coating to have a uniform thickness. Alternatively, a predetermined uneven pattern may be formed on the coating (see, for example, Patent Document 1 below).
[0003] Specifically, Patent Document 1 below describes the production by photolithography of a substrate (stamp) on which a predetermined pattern is engraved in a convex shape using polydimethylsiloxane (PDMS), metal, silicone, glass, or the like, and the formation of a biocompatible polymer layer on the surface of the resulting stamp (the stamp surface on which the pattern is engraved).
[0004] Furthermore, Patent Document 1 listed below describes a method of applying a solution of a biocompatible polymer or the like to the surface of a stamp by spin coating, and adjusting the rotation speed and rotation time of the spin coater to adjust the thickness of a nano-thin film made of a biocompatible polymer or the like applied to the surface of the stamp.
[0005] International Publication No. 2017 / 183712
[0006] However, in the conventional methods described above, since the coating film is wetted and spread by the spin coating method, it is difficult to intentionally form a pattern with partially different thicknesses on the surface of the coating film formed by drying the coating film, because the spin coating method is a method for coating a coating film uniformly by wetting and spreading the coating film.
[0007] The present invention has been proposed in consideration of the above-mentioned conventional circumstances, and aims to provide a coated member and a method for manufacturing the same that make it possible to form a surface pattern having different thicknesses on the surface of a coating film formed by drying a coating film applied to the surface of the member.
[0008] In order to achieve the above-mentioned object, the present invention provides the following means: [1] A coated member comprising: a member; and a coating formed on the surface of the member, wherein the coating is formed by drying a coating applied to the surface of the member, and wherein the coating has a surface pattern in which a thickness difference occurs from other parts of the surface of the member in accordance with a temperature difference on the surface of the member when the coating is dried. [2] The coated member according to [1] above, wherein the thickness of the part of the coating where the surface pattern is formed is greater than the thickness of the part of the coating other than the surface pattern. [3] The coated member according to [1] above, wherein the member is a container with an open top, and the coating is formed on at least the inside bottom surface of the container. [4] A method for producing a coated member, comprising: a temperature difference applying step of partially applying a temperature difference to the surface of the member in a predetermined pattern; a coating step of applying a coating liquid to the surface of the member to form a coating; and a drying step of drying the coating to form a coating having a surface pattern in which a thickness difference occurs from other parts in accordance with the temperature difference. [5] A method for producing a coated member, comprising: a heating step of partially heating the surface of a member in a predetermined heating pattern to create a temperature difference between the portion heated by the heating pattern and the portion; a coating step of applying a coating liquid to the surface of the member to form a coating film; and a drying step of drying the coating film to form a coating having a surface pattern in which the thickness of the portion where the surface pattern is formed is different from that of the remaining portion in accordance with the temperature difference. [6] A method for producing a coated member according to [5], wherein the coating is formed so that the thickness of the portion where the surface pattern is formed is greater than the thickness of the portion other than the surface pattern. [7] A method for producing a coated member according to [5], wherein a resin film is formed as the coating. [8] A method for producing a coated member according to [5], wherein in the heating step, a heating medium heated in accordance with the heating pattern is brought into contact with or opposed to the surface of the member. [9] A method for producing a coated member according to [5], wherein in the coating step, the coating liquid is applied by spin coating.
[10] A method for producing a coated member according to [5], wherein in the drying step, the coating film is dried at room temperature.
[11] The method for producing a coated member according to [5], wherein the member is a container having an open top, and the coating is formed on at least the inner bottom surface of the container.
[0009] As described above, the present invention provides a coated member and a method for manufacturing the same that make it possible to form a surface pattern having different thicknesses on the surface of a coating film formed by drying a coating film applied to the surface of the member.
[0010] Fig. 1 is a plan view showing a coated member according to one embodiment of the present invention. Fig. 2 is a cross-sectional view showing a coated member. Fig. 3 is a plan view showing a heating medium. Fig. 4 is a cross-sectional view for explaining a manufacturing process of a coated member. Fig. 5 is a cross-sectional view for explaining a manufacturing process of a coated member. Fig. 6 is a cross-sectional view for explaining a manufacturing process of a coated member. Fig. 7 is a diagram showing the results of image analysis in an example.
[0011] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. Note that the materials, dimensions, etc. exemplified in the following description are merely examples, and the present invention is not necessarily limited thereto. Appropriate changes can be made within the scope of the present invention.
[0012] (Coated Member) First, as one embodiment of the present invention, a coated member 1 shown in, for example, Figures 1 and 2 will be described. Figure 1 is a plan view showing the coated member 1. Figure 2 is a cross-sectional view showing the coated member 1. Figure 2 is a cross-sectional view taken along line II-II in Figure 1.
[0013] 1 and 2, the coated member 1 of this embodiment is an application of the present invention to, for example, a culture dish for culturing a cell sheet. In addition, a temperature-responsive polymer coating is formed on the inner bottom surface of the culture dish to allow the cultured cell sheet to be properly detached from the culture dish.
[0014] The member used for the coated member 1 is any member that can be coated, such as a circular or polygonal plastic plate (e.g., square or pentagonal), or a plastic dish with a rim. In addition to culture dishes, other materials such as petri dishes, insert dishes, and flasks can also be used. The member used for the coated member 1 may be made of materials other than plastic, such as glass, metal, or ceramic.
[0015] The temperature-responsive polymer may be, for example, a polymer having a lower critical solution temperature (LCST), a homopolymer or copolymer thereof, or a mixture thereof. Such a polymer can be obtained, for example, by homopolymerization or copolymerization of the following monomers. Examples of usable monomers include N-isopropyl(meth)acrylamide, N-n-propyl(meth)acrylamide, N-ethoxyethylacrylamide, N,N-diethylacrylamide, N-methyl-N-isopropylacrylamide, and N-methyl-N-n-propylacrylamide.
[0016] Examples of comonomers for copolymerization include alkyl (meth)acrylates such as methyl (meth)acrylate, ethyl (meth)acrylate, n-propyl (meth)acrylate, n-butyl (meth)acrylate, etc. Furthermore, copolymerization with monomers other than the above-mentioned monomers, graft or copolymerization between polymers, or a mixture of polymers or copolymers may be used.
[0017] Furthermore, crosslinking is also possible to the extent that the inherent properties of the polymer are not impaired. The temperature-responsive polymer used in the present invention preferably has a molecular weight of 500 or more, preferably 3,000 or more, more preferably 8,000 or more, and most preferably 12,000 or more. If the molecular weight is less than 500, cultured cells on the polymer are difficult to detach even when the temperature is changed, and work efficiency is significantly reduced, which is not preferred.
[0018] The coated member 1 of this embodiment includes a cylindrical container 2 that is open at the top and has a bottom, and has a coating 3 formed on at least the inside bottom surface of the container 2 (in this embodiment, the inside bottom surface and inner peripheral surface (inside side surface) of the container 2). In this embodiment, the side where the bottom of the container 2 is provided is called the lower side of the container 2, and the opposite side is called the upper side.
[0019] The coating 3 is made of a resin film of a temperature-responsive polymer, and is formed by drying a coating applied to the inner surface of the container 2. The coating 3 also has a surface pattern 4 in which a thickness difference occurs between the inner bottom surface of the container 2 and other parts in response to the temperature difference at the inner bottom surface of the container 2 when the coating is dried. For example, in this embodiment, a grid-like convex pattern is formed on the surface of the coating 3 as the surface pattern 4. Here, the term "pattern" refers to an artificial shape or design formed by convex portions and concave portions. In this specification, the term "surface pattern" refers to a shape or design formed artificially by convex portions.
[0020] As a result, the thickness t1 of the coating 3 in the portion where the surface pattern 4 is formed is greater than the thickness t2 of the coating 3 other than the surface pattern 4 (t1>t2).
[0021] As described above, the coated member 1 of this embodiment is configured such that the coating 3 having the surface pattern 4 with a thickness that varies in parts is formed on the inner surface of the container 2. In other words, in the coated member 1 of this embodiment, the coating 3 is formed on the inner surface of the container 2, the coating 3 has the surface pattern 4, and the thickness of the part of the coating 3 where the surface pattern 4 is formed is different from the thickness of the part of the coating 3 other than the surface pattern 4.
[0022] (Method for manufacturing coated member) Next, a method for manufacturing the coated member 1 will be described with reference to Figs. 3 to 6. Fig. 3 is a plan view showing the heating medium 20. Figs. 4 to 6 are cross-sectional views for explaining the manufacturing process of the coated member 1. Figs. 4 to 6 show cross-sectional views at the same position as Fig. 2.
[0023] The method for manufacturing the coated member 1 includes a heating step in which the surface of the member, for example, in this embodiment, the inner bottom surface of the container 2, is partially heated in a predetermined heating pattern to create a temperature difference between the portion heated by the heating pattern and the other portion; a coating step in which a coating liquid is applied to the surface of the member to form a coating film; and a drying step in which the coating film is dried to form a coating 3 having a surface pattern 4 that has a thickness different from the other portion in accordance with the temperature difference.
[0024] Specifically, the heating step uses a heating medium 20 having a heating pattern 20a as shown in Fig. 3. The heating medium 20 is made of, for example, a cylindrical silicone rubber and has the heating pattern 20a on its upper surface.
[0025] The heating pattern 20a has a shape corresponding to the surface pattern 4 of the coating 3. That is, the heating pattern 20a forms a lattice-like convex pattern corresponding to the surface pattern 4.
[0026] 4, in the heating step, the heating medium 20 is heated to a predetermined temperature in a dry oven, and then the heating pattern 20a is brought into contact with or facing the bottom surface of the container 2, for example, the outer bottom surface in this embodiment, and the bottom surface of the container 2 is partially heated by the heating pattern 20a. Note that in this embodiment, heating is performed by bringing the heating pattern 20a into contact with the outer bottom surface of the container 2, but heating may also be performed by bringing the heating pattern 20a into contact with or facing the outer bottom surface of the container 2 in a non-contact state. Note that the heating pattern 20a of the heated heating medium 20 may be brought into contact with or facing the inner bottom surface of the container 2 to heat the inner bottom surface of the container 2. In this case, after the heating medium 20 is separated from the inner bottom surface of the container 2, i.e., after the heating step, the coating step and drying step are performed.
[0027] This allows a temperature difference to be created between the portion of the bottom surface of the container 2 that is heated by the heating pattern 20a and the other portion. That is, heating can be performed to increase the temperature of the portion of the bottom surface of the container 2 that is heated by the heating pattern 20a.
[0028] 5, in the coating step, a coating liquid L is prepared by dissolving a coating agent, which is a raw material of the coating film 3, in a solvent. The coating agent is a substance that coats the inner surface of the container 2 and may be any substance that can impart properties other than those of the material of the container 2.
[0029] In this embodiment, the coating material may be, for example, a temperature-responsive polymer, or a functional resin such as polytetrafluoroethylene, silicone, or polyethylene, or a general-purpose resin.
[0030] In the coating step, the coating liquid L is applied by spin coating to the inside of the container 2. That is, in this spin coating method, the container 2 is placed together with the heating medium 20 on a turntable of a spin coater (not shown), and the coating liquid L is dripped onto the inside bottom surface of the container 2 while the turntable is rotated around an axis (for example, an axis passing through the center of the container 2 in the plan view shown in FIG. 1 and extending vertically).
[0031] As a result, the coating liquid L spreads from the inner bottom surface of the container 2 to the inner peripheral surface due to centrifugal force, forming a coating film (hereinafter sometimes referred to as ``coating film L'') over the entire inside of the container 2, i.e., the bottom surface and the inner peripheral surface.
[0032] In the drying step, the coating liquid (coating film) L applied by the spin coating method described above is dried as it spreads due to centrifugal force.
[0033] 6, the coating film L is dried at room temperature (so-called natural drying) to form the coating film 3 on the inner surface (inner bottom surface and inner circumferential surface) of the container 2. In this embodiment, room temperature refers to 15° C. to 25° C. The heating temperature by the heating medium 20 is higher than this room temperature.
[0034] In addition, in the drying step, since the drying of the coating film L proceeds simultaneously with the wetting and spreading, it is not necessary to rotate the container 2 during drying, and rotation may be stopped. On the other hand, drying while rotating can speed up drying.
[0035] In the drying process, a temperature difference is created between the portion of the bottom surface of the container 2 heated by the heating pattern 20a and the other portion, resulting in a thickness difference in the dried coating 3. That is, in the portion heated by the heating pattern 20a, drying of the coating liquid L is accelerated, resulting in a partial increase in the thickness of the coating 3. In the portion heated by the heating pattern 20a, drying of the coating liquid L is accelerated and a coating film is formed early, but the coating liquid L from another portion flows onto the formed coating film and is further dried, resulting in a coating film that is thicker in the portion heated by the heating pattern 20a than in the other portion.
[0036] As a result, a surface pattern 4 having a shape corresponding to the above-mentioned heating pattern 20a is formed on the surface of the dried coating 3. That is, it is possible to form a coating 3 in which the thickness t1 of the portion where the surface pattern 4 is formed is greater than the thickness t2 of the portion other than the surface pattern 4. As described above, the above-mentioned coated member 1 can be manufactured through three simultaneous steps, namely, the application step being performed during the heating step and the drying step being performed.
[0037] As described above, in the manufacturing method of the coated member 1, it is possible to form a surface pattern 4 having a thickness different from that of other parts on the surface of the above-mentioned member, for example, the surface of the coating 3 formed by drying the coating film L applied to the inner bottom surface of the container 2.
[0038] The present invention is not necessarily limited to the above-described embodiment, and various modifications can be made without departing from the spirit of the present invention.
[0039] For example, the method for manufacturing the coated member 1 is not limited to the simultaneous progression of the three steps described above, and may be performed in the order of heating step followed by coating step, or in the order of coating step followed by heating step. Furthermore, when the heating step is performed first and then the coating step, the drying step may be started after the heating step and approximately simultaneously with the coating step. When the coating step is performed after the heating step, the drying step may be started after the coating step and approximately simultaneously with the heating step. When heating is performed using a medium, it is preferable to perform the heating step first, as this simplifies the process. The heating step, coating step, and drying step may be performed in this order.
[0040] The surface pattern 4 is not limited to the grid pattern described above, but may be any pattern that divides the inside bottom surface of the container 2, such as a radial pattern or a concentric pattern.
[0041] The coated member 1 is not limited to the above-mentioned culture dish, but may be any member on whose surface a coating is formed. The surface pattern 4 is also not particularly limited, and may be, for example, a figure, a design, a letter, a symbol, or the like.
[0042] Furthermore, the surface pattern 4 is not limited to the above-described convex pattern, but may be an inverted pattern of a concave-convex pattern, in other words, a shape in which the concave-convex relationship between the surface pattern 4 and other parts in Fig. 2 is reversed. In the case of this inverted pattern, the surface pattern 4 is a plurality of convex parts partitioned by concave parts formed in a grid pattern.
[0043] The heating medium 20 may be any medium that partially heats the surface of the member (the inner bottom surface of the container 2) in a predetermined heating pattern 20a, and may be, in addition to the above-described configuration, an electric heating medium in which wiring such as nichrome wire is arranged as the predetermined heating pattern 20a. Electrical heating is preferable because it allows the application step and the heating step to be carried out almost simultaneously.
[0044] Furthermore, the heating process is not limited to the method using the heating medium 20 described above, but may also use a method in which the surface of the member (the inner bottom surface of the container 2) is partially heated in a predetermined heating pattern, for example, by irradiating it with an electron beam or infrared rays.
[0045] Furthermore, in the heating process, a method is used in which a temperature difference is created between the part heated by the heating pattern described above and the other part. However, in addition to the heating process described above, the temperature difference creating process may also use a method in which a temperature difference is created between the part to be cooled and the other part as a cooling process.
[0046] Specifically, the cooling step may involve partially cooling the surface of the component, for example, the inner bottom surface of the container 2, in a predetermined cooling pattern using, for example, a Peltier element, thereby creating a temperature difference between the cooled portion and the remaining portion. In this case, the thickness of the portion of the coating 3 on which the surface pattern 4 is formed is smaller than the thickness of the portion of the coating 3 other than the surface pattern 4.
[0047] In the coating process, in addition to the spin coating method described above, a method can be used in which the coating liquid L is applied and the coating film L is adhered to the surface of the member with a certain level of uniformity or more.For example, it is possible to apply the coating liquid L by spraying, applying the coating liquid L with a brush, or applying the coating liquid L by gravure coating.
[0048] In addition, in the production of the culture dish, after the formation of the coating 3, the following steps may be performed: a step of measuring the thickness of the coating 3 using an absolute reflectance type (spectral reflectance type / optical interference type) film thickness measuring device (measurement step); a step of removing non-conforming products (removal step); a step of placing the culture dish in a sterilization bag (packaging step); and a step of sterilizing with ethylene oxide gas (sterilization step).
[0049] The effects of the present invention will be made clearer by the following examples. Note that the present invention is not limited to the following examples and can be practiced with appropriate modifications within the scope of the present invention.
[0050] In this example, a cylindrical culture dish with a bottom was first prepared. The culture dish was a surface-treated dish (Corning: 430165, culture area: approximately 8 cm). 2 The culture dish was made of polystyrene.
[0051] Next, a heating medium was prepared with a grid-like heating pattern formed on the top surface of a cylindrical silicone rubber. The heating pattern was a grid-like convex pattern with a width of 2 mm and a spacing of 6 mm between the convex patterns. The heating medium was produced using a Keyence 3D printer (AGILISTA-3000).
[0052] Next, this heating medium was heated for 30 minutes in a dry oven at 60° C. Note that the heating medium only needs to be sufficiently heated, and may be heated for, for example, 1.5 hours in a dry oven at 35° C. Furthermore, the heating conditions for the heating medium are not limited to these, as long as a temperature difference of 10° C. or more can be established between the heated portion and the other portion in the heating pattern.
[0053] Next, the bottom surface of the culture dish was partially heated with the heating pattern while the heating pattern was in contact with the bottom surface of the culture dish.
[0054] At this time, the temperature of the inner bottom surface of the culture dish was measured using a non-contact thermometer (BOSCH: radiation thermometer GIS500). As a result, the temperature of the part in contact with the heating pattern was 54.8°C, and the temperature of the part not in contact with the heating pattern was 28.2°C.
[0055] Next, a coating agent made of polybutyl methacrylate-polyisopropylacrylamide block copolymer (hereinafter referred to as "PBMA-b-PIPAAm") was dissolved in a mixed solvent of dimethylformamide and isopropanol (mass ratio 1:4) to prepare a coating solution with a concentration of 0.225 vol%.
[0056] Next, this solution was applied to the inside of a culture dish by spin coating. Specifically, the heating medium and the culture dish were placed on top of each other on the turntable of a spin coater, and negative pressure (suction) was applied from below the turntable to fix the culture dish and the heating medium to the turntable.
[0057] Then, 40 μL of the coating solution was dropped onto the approximate center of the inner bottom surface of the culture dish, and the rotation speed of the rotating table was increased to 5000 rpm at 500 rpm / sec, and then the rotation was maintained for 15 seconds.
[0058] As a result, the coating solution was spread from the inner bottom surface to the inner peripheral surface of the culture dish by centrifugal force, and the coating film was dried at room temperature.
[0059] By going through the above steps, a coated member was produced in which a PBMA-b-PIPAAm coating was formed on the inner surface of the culture dish.
[0060] In this example, the thickness of the coating formed on this coated member was measured using a film thickness measuring device (OPTM manufactured by Otsuka Electronics Co., Ltd.). In this measurement, 441 points were measured within a 20 mm x 20 mm area near the center of the inner bottom surface of the culture dish, and three-dimensional data was collected. This data was then subjected to image analysis. The image analysis results are shown in Figure 7. Interpolation was performed between the measurement points to create a three-dimensional surface.
[0061] As a result, it was confirmed that a convex pattern was formed on the surface of the coating as a lattice-like surface pattern. Furthermore, the height of the coating was 13 nm at the lowest point and 23 nm at the highest point from the inner bottom surface of the container 2. That is, the difference in thickness of the coating was approximately 10 nm. The portions of the coating in this example where the surface pattern is formed also have thickness differences. For example, the coating at the intersection of the grids of the heating pattern is thicker than the coating at the portion where the grids simply extend. At the intersection of the grids of the heating pattern, heat dissipation is suppressed compared to the portion where the grids simply extend, so the temperature is higher, and as a result, it is thought that the thickness of the coating at the intersection of the grids is improved.
[0062] In the field of cell culture, the thicker the temperature-responsive polymer coating formed on the inside bottom surface of a culture dish, the poorer the adhesion of the cultured cells to the coating in the early stages of culture. Therefore, the culture dish of this example is expected to improve the detachability of the cell sheet formed on the coating.
[0063] Furthermore, in the culture dish of this embodiment, a surface pattern is formed on the coating that has a thickness different from that of the other parts, so that in the early stages of culture, the cells are cultured in close contact with the coating in the thinner parts, while after culture is completed, the cells can be preferentially detached from the thicker parts.
[0064] Furthermore, as the cells contract in the detached area, tensile force is generated between the thin and thick parts of the coating, facilitating the detachment of the cultured cell sheet.
[0065] A culture dish with a circular bottom is used for culturing cell sheets, and the cultured cell sheet depends on the shape of the dish, so it takes on a circular shape roughly equal to the diameter of the dish.
[0066] Furthermore, cultured cell sheets are applied to various sites in regenerative medicine, and the shapes of the affected areas to which they are applied may vary.
[0067] In such a situation, the technician must cut the cell sheet, which has been cultured to the same shape as the bottom of the culture dish, to fit the shape of the affected area and apply it by matching the shape.
[0068] However, cell sheets are flexible and fragile. Therefore, cutting them into any desired shape requires advanced techniques. Furthermore, cutting a cell sheet means discarding some of the cultured cells.
[0069] In contrast, the culture dish of this embodiment can culture, for example, four thin square cell sheets with a diameter of 1 cm, eight cell sheets with an approximately square shape, and four cell sheets with an approximately triangular shape.
[0070] Furthermore, the shape of the thin part of the temperature-responsive polymer coating can be freely changed, so multiple cell sheets with a predetermined outer shape can be cultured from a single culture dish.
[0071] REFERENCE SIGNS LIST 1... Coated member 2... Container 3... Coating 4... Surface pattern 20... Heating medium 20a... Heating pattern L... Coating liquid (coating film)
Claims
1. A member with a coating, comprising a member and a coating formed on the surface of the member, the coating being formed by drying a coating film applied to the surface of the member, and having a surface pattern with a thickness difference from other portions according to the temperature difference on the surface of the member when drying the coating film.
2. The member with a coating according to claim 1, wherein the thickness of the portion where the surface pattern of the coating is formed is greater than the thickness of the coating other than the surface pattern.
3. The member with a coating according to claim 1, wherein the member is a container with an open top, and the coating is formed on at least the inner bottom surface of the container.
4. A method for manufacturing a member with a coating, comprising a temperature difference applying step of partially providing a temperature difference on the surface of the member in a predetermined pattern, a coating step of forming a coating film by applying a coating liquid to the surface of the member, and a drying step of forming a coating having a surface pattern with a thickness difference from other portions according to the temperature difference by drying the coating film.
5. A method for manufacturing a member with a coating, comprising a heating step of partially heating the surface of the member in a predetermined heating pattern to provide a temperature difference from the portion heated by the heating pattern, a coating step of forming a coating film by applying a coating liquid to the surface of the member, and a drying step of forming a coating having a surface pattern with a thickness difference from other portions according to the temperature difference by drying the coating film.
6. The method for manufacturing a member with a coating according to claim 5, wherein the coating formed has a greater thickness in the portion where the surface pattern is formed than in the portion other than the surface pattern.
7. The method for manufacturing a member with a coating according to claim 5, wherein a resin film is formed as the coating.
8. The method for manufacturing a member with a coating according to claim 5, wherein in the heating step, a heating medium heated corresponding to the heating pattern is brought into contact with or opposed to the surface of the member.
9. The method for manufacturing a member with a coating according to claim 5, wherein in the coating step, the coating liquid is applied by the spin coating method.
10. The method for manufacturing a member with a coating according to claim 5, wherein in the drying step, the coating film is dried at room temperature.
11. The method for manufacturing a member with a coating according to claim 5, wherein the member is a container with an open top, and the coating is formed on at least the inner bottom surface of the container.
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