Coating mechanism, liquid material coating apparatus, and liquid material coating method
Patent Information
- Application Number
- JP2025025911
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2026-09-01
Smart Images

Figure 2026139321000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a coating mechanism, a liquid material coating apparatus, and a method for coating a liquid material.
Background Art
[0002] When handling cells in vitro, a three-dimensional cell tissue chip is constructed, and evaluation and experiments are performed on the three-dimensional tissue chip. This approach is important for the progress of drug discovery research and regenerative medicine research. This is because in an actual living body, cells proliferate three-dimensionally to form tissues and organs.
[0003] In recent years, it has become clear that in constructing three-dimensional cell tissues, it is important to culture cells in a microenvironment that mimics the environment of the organ where the cells originally exist. Accordingly, the use of collagen, Matrigel, and the like for constructing cell tissues has attracted attention. Collagen and Matrigel are constituent elements of the microenvironment. Collagen and Matrigel are biologically-derived protein materials.
[0004] Collagen and Matrigel gelate when heated. Once collagen or the like has gelled, collagen containing cells cannot be transferred to a substrate or the like. For this reason, in producing cell tissues, it is important to control the temperature of the liquid material container provided in the coating mechanism so that the material does not gel.
[0005] Japanese Patent Application Laid-Open No. 2021-023906 (Patent Document 1) discloses an example in which a Peltier element is used to adjust the temperature of a liquid material in a liquid material container. This suppresses stringing caused by the liquid material.
Prior Art Literature
Patent Literature
[0006]
Patent Literature 1
Summary of the Invention
[0007] In Patent Document 1, temperature control by a Peltier element or similar component is limited to either the side or bottom surface of the liquid material container. Therefore, it is difficult to control the temperature of the entire liquid material container to be uniform. If the temperature of the liquid material cannot be controlled, the types of materials that can be applied are limited. For example, liquid materials containing cells, used in the construction of cell tissues, may be difficult to apply to using Patent Document 1. This is because if the solvent contained in the liquid material changes its physical properties with temperature, the liquid material may solidify unintentionally, making application impossible.
[0008] Furthermore, if temperature control elements such as Peltier elements are positioned to protrude vertically (Z-direction) downwards from the liquid material container, the vertical gap between the liquid material container and the workpiece (substrate, plate, etc.) increases. This can destabilize the output of the coating process. In other words, the coating needles protruding from the liquid material container may not reach the workpiece, potentially limiting the area to which the liquid material is applied.
[0009] The present invention has been made in view of the above-mentioned problems. The object of the present invention is to provide a coating mechanism that can apply a wider variety of liquid materials more stably, a liquid material coating apparatus equipped with the coating mechanism, and a method for applying liquid materials using the coating mechanism. [Means for solving the problem]
[0010] The coating mechanism according to this disclosure comprises a coating needle, a liquid material container, and a temperature control unit. The coating needle coats the liquid material onto the workpiece. The liquid material container houses and holds the liquid material. The liquid material container has a through-hole at its bottom through which the coating needle can pass. The temperature control unit includes a block member and a controller. The block member is capable of mounting the liquid material container. The controller is fixed to the block member and can control the temperature of the block member. The block member is capable of mounting the liquid material container so as to surround both the sides and the bottom of the liquid material container. The height of the lowest part of the through-hole of the liquid material container mounted on the block member is equal to the height of the lowest part of the block member.
[0011] A liquid material dispensing apparatus according to this disclosure comprises the above-described dispensing mechanism and a holding base for holding a workpiece.
[0012] The method for applying a liquid material according to this disclosure uses the application mechanism described above. The liquid material attached to the tip of the application needle is supplied to the workpiece. The liquid material supplied to the workpiece is cooled to below room temperature. [Effects of the Invention]
[0013] According to this disclosure, the block member surrounds both the sides and the bottom of the liquid material container. The lowest point of the through-hole of the liquid material is at the same height as the lowest point of the block member. This makes it possible to provide a coating mechanism that can apply a wider variety of liquid materials more stably, a liquid material coating apparatus equipped with the coating mechanism, and a method for applying liquid materials using the coating mechanism. [Brief explanation of the drawing]
[0014] [Figure 1] This is a schematic front view showing a coating apparatus according to an embodiment. [Figure 2] Figure 1 is a schematic diagram showing the needle application section of the coating apparatus. [Figure 3] This is a perspective view of the coating mechanism according to this embodiment. [Figure 4] This is a photograph of the temperature control unit, as shown in Figure 3. [Figure 5] It is a schematic cross-sectional view showing a block member to which a liquid material container is attached. [Figure 6] It is a schematic enlarged cross-sectional view of a region VI surrounded by a dotted line in FIG. 5. [Figure 7] It is a schematic cross-sectional view showing a state where a block member is fixed to a cooling unit. [Figure 8] It is a photograph of a block member holding a liquid material container as shown in FIG. 7. [Figure 9] It is a schematic side view showing a state where a frame surrounding a temperature control unit is fixed to a needle application part and a housing part by a mounting part. [Figure 10] It is a schematic side view showing a side view of the cooling fan of FIG. 9 viewed from the negative side in the Y direction. [Figure 11] It is a photograph of a connecting part between a housing part and a temperature control unit including the fastener of FIG. 10. [Figure 12] It is a schematic cross-sectional view showing temperature measurement positions in Example 1 of the block member to which the liquid material container of FIG. 5 is attached. [Figure 13] It is a graph showing results of measuring temperatures at measurement positions A and B by a thermocouple. [Figure 14] These are observation results of an object to be coated immediately after a first coating liquid is coated onto a coating surface of a well. [Figure 15] These are observation results of the object to be coated after a medium is added to the first coating liquid of FIG. 14. [Figure 16] These are observation results of the object to be coated immediately after the first coating liquid is filled in the liquid material container, left standing for 35 minutes in a cooled state, then coated onto the coating surface of the well and a medium is added thereto. [Figure 17] These are observation results of the object to be coated of FIG. 16 after the object to be coated is left standing for one day. DETAILED DESCRIPTION OF THE INVENTION
[0015] (Introduction) First, the coating mechanism according to this embodiment will be described. As shown in Figures 2 and 3, the coating mechanism 110 comprises a coating needle 24, a liquid material container 21, and a temperature control unit 28. The coating needle 24 coats the workpiece (e.g., in the well 9A of the plate 8: see Figure 1) with the liquid material. The liquid material container 21 houses and holds the liquid material. As shown in Figure 7, the liquid material container 21 has a container through-hole 25A formed at its bottom. The temperature control unit 28 can accommodate the liquid material container 21. The temperature control unit 28 includes a block member 26 and a controller (cooling unit 37). The block member 26 can accommodate the liquid material container 21. The cooling unit 37 is fixed to the block member 26 and can control the temperature of the block member 26. As shown in Figure 6, the block member 26 can accommodate the liquid material container 21 so as to surround both the sides (outer peripheral side portion 21B1) and the bottom (outer peripheral bottom portion 21B2) of the liquid material container 21. The height of the lowest part 21P of the container through hole 25A of the liquid material container 21 attached to the block member 26 is equal to the height of the lowest part 26P of the block member 26.
[0016] (Embodiment) <Configuration of the coating device> Figure 1 is a schematic front view showing a coating apparatus according to an embodiment. For the sake of explanation, the X, Y, and Z directions are introduced. Referring to Figure 1, the coating apparatus 100 (liquid material coating apparatus) includes a needle coating section 104 and a dropping section 105 as a coating section 107 capable of supplying the coating material to be coated. Thus, in this specification, "coating" includes both the supply of coating material using a coating needle, which will be described later, and the supply of coating material by dropping. For this reason, the former supply using a coating needle may be referred to as "needle coating" in this specification. The coating apparatus 100 in Figure 1 includes one needle coating section 104 and one dropping section 105. The needle coating section 104 and the dropping section 105 are spaced apart in the X direction. The distance between them in the X direction is constant and does not change. Note that Figure 1 only shows the needle coating section 104 for the first coating solution, which is a bioink and will be described later, and the dropping section 105 for the second coating solution, and the dropping section for the culture medium is not shown.
[0017] The X-axis stage 101 (stage) is movable along the horizontal X-direction. The Y-axis stage 102 is also movable along the horizontal Y-direction. Specifically, for example, a guide is installed on the underside of the X-axis stage 101 or the Y-axis stage 102. This guide is slidably connected to a guide rail (not shown). For example, the upper surface of the X-axis stage 101 is a mounting surface on which a plate 8, which is the material to be machined, can be placed. The plate 8 is, for example, a multi-well plate having multiple wells 9A. In Figure 1, the X-axis stage 101 is placed on the Y-axis stage 102, and the plate 8 is placed on the X-axis stage 101. However, the opposite may also be true: the X-axis stage 101 is placed on the Y-axis stage 102, and the plate 8 is placed on the X-axis stage 101.
[0018] The needle coating unit 104, the dropping unit 105, and the observation optical system 106 are connected to a member that can move in the Z direction, such as a Z-axis table. In other words, the needle coating unit 104, the dropping unit 105, and the observation optical system 106 are held within the coating apparatus 100 so as to be movable in the Z direction. The observation optical system 106 observes and measures the position on the plate 8 where the coating material should be applied. The observation optical system 106 may be equipped with a CCD camera that converts the observed image into an electrical signal. Observation of the plate 8 by the observation optical system 106 may be performed using visible light. However, observation of the plate 8 is not limited to visible light; it may also be performed using infrared light, X-rays, ultrasound, etc., and depending on the material of the plate 8, it may be possible to observe the plate 8 using magnetism. The plate 8 observed by means other than visible light does not need to be transparent or translucent; it may be opaque.
[0019] Figure 2 is a schematic diagram showing the needle application section of the coating apparatus shown in Figure 1. Referring to Figure 2, the needle application section 104 of this embodiment mainly includes a servo motor 41, a cam 43, a bearing 44 held in contact with the cam surface of the cam 43, a cam connecting plate 45, a movable part 46, a movable base 35A that holds the coating needle holder 20, and a liquid material container 21. The coating needle holder 20 is detachably attached to the movable base 35A. In other words, the movable base 35A, as a base body, detachably holds the coating needle holder 20.
[0020] In the needle application section 104, the servo motor 41 is installed so that its central axis extends in the direction along the Z-axis direction shown in Figure 1. A cam 43 is connected to the rotation axis of the servo motor 41. The cam 43 is rotatable about the central axis of the servo motor 41. The cam 43 includes a central part connected to the rotation axis of the servo motor 41 and a flange part connected to one end of the central part. The upper surface of the flange part (the surface on the servo motor 41 side) is the cam surface. This cam surface is formed in an annular shape along the outer circumference of the central part and is also formed in a slope shape so that the distance from the bottom surface of the flange part varies. Specifically, the cam surface includes an upper flat region where the distance from the bottom surface is the greatest (thickest), a lower flat region spaced apart from this upper flat region, and a slope part that smoothly connects the upper flat region and the lower flat region. The lower flat region is the region where the distance from the bottom surface is the greatest (thinnest).
[0021] A bearing 44 is positioned so as to be in contact with the cam surface of the cam 43. A cam connecting plate 45 is connected to this bearing 44. In the cam connecting plate 45, one end connected to the bearing 44 and the other end opposite to it are fixed to a movable part 46. A movable base 35A, which serves as a base body, is connected to this movable part 46. A coating needle holder 20 is installed on this movable base 35A. The coating needle holder 20 includes a coating needle 24. The coating needle 24 is capable of applying coating material to the coating surface (the horizontal bottom surface) of, for example, a well 9A of the plate 8. The coating needle 24 is positioned to protrude from the coating needle holder 20 on the lower surface of the coating needle holder 20 (the lower side opposite to the side where the servo motor 41 is located). A liquid material container 21 is positioned below the coating needle holder 20. The coating needle 24 is held in an inserted state within the liquid material container 21.
[0022] A fixing pin is fixed to the movable part 46. The other fixing pin is fixed to the frame that holds the servo motor 41. A spring is installed to connect these fixing pins. Due to this spring, the movable part 46 is subjected to a force directed toward the liquid material container 21. In addition, the force of this spring maintains the bearing 44 pressed against the cam surface of the cam 43.
[0023] Furthermore, the movable part 46 and the movable base 35A are connected to a linear guide installed on a frame that holds the servo motor 41, and are able to move along the Z-axis direction.
[0024] In the needle application unit 104 described above, the servo motor 41 is driven to rotate its rotation axis, thereby rotating the cam 43. As a result, the position of the bearing 44 in contact with the cam surface of the cam 43 in the Z-axis direction changes according to the rotation of the servo motor 41's rotation axis. Then, in response to this change in the position of the bearing 44 in the Z-axis direction, the movable part 46 and the movable base 35A move in the Z-axis direction, thereby changing the position of the application needle 24 in the Z-axis direction. In other words, the application needle 24 can be made to reciprocate in the Z-axis direction. With this operation, when the application needle 24 is in the upper Z-axis direction, the tip of the application needle 24 is immersed in the liquid material container 21 containing the liquid material. In this state, the application operation is performed by the application needle 24 protruding downward from the tip hole at the bottom of the liquid material container 21. With the liquid material attached to the tip of the application needle 24, the tip of the application needle 24 protrudes from the tip hole at the bottom of the liquid material container 21 and exits the liquid material container 21. At this time, the liquid material is pulled upward by surface tension, and a nearly constant amount of liquid material adheres to the tip of the coating needle 24. This adhered liquid material is then transferred into the well 9A of the plate 8, enabling a highly reproducible coating process. The movement of the coating needle 24 by the cam 43 mechanism may also be vertical movement by a mechanism including a servo motor 41, a disc member, and a link member, combined therewith.
[0025] <Configuration of the coating mechanism> Figure 3 is a perspective view of the coating mechanism according to this embodiment. As shown in Figure 3, the coating mechanism 110 is equipment for coating liquid material. The coating mechanism 110 includes the needle coating section 104 shown in Figures 1 and 2. The coating apparatus 100 of this embodiment actually has the coating mechanism 110 shown in Figure 3 instead of the needle coating section 104 shown in Figure 1. The needle coating section 104 in the coating mechanism 110 is located in the area enclosed by the dotted line in Figure 3. In addition to the needle coating section 104, the coating mechanism 110 mainly comprises a temperature control unit 28 and a housing section 75. In the coating mechanism 110, the needle coating section 104 and the temperature control unit 28 are supported by the housing section 75. In other words, the housing section 75 is a support column that supports the coating needle 24 and the liquid material container 21. Therefore, by moving the needle coating section 104 in the Z direction, the entire coating mechanism 110 can be moved in the Z direction.
[0026] The temperature control unit 28 is positioned within the coating mechanism 110, generally below the needle coating section 104 in the Z direction. The temperature control unit 28 can accommodate a liquid material container 21. The temperature control unit 28 can control the temperature of the liquid material container 21. The temperature control unit 28 includes a block member 26 and a cooling unit 37 as a controller.
[0027] The block member 26 in this embodiment is made of aluminum. However, the material used for the block member 26 is not limited to aluminum. It is preferable that the block member 26 be made of a material with high thermal conductivity. From this viewpoint, the block member 26 may be made of any of the group consisting of aluminum, copper, and stainless steel. Here, it is not limited to cases where it is made of only one of the above metal materials, but also includes cases where it is made of a material in which one of the above metal materials is the main component.
[0028] A liquid material container 21 can be inserted into the block member 26. In other words, the block member 26 can accommodate the liquid material container 21. The liquid material container 21 is mounted in the coating mechanism 110 so as to be in contact with the block member 26. The outside of the block member 26 is covered with an insulating material 27. The insulating material 27 can also be considered a component of the temperature control unit 28.
[0029] The cooling unit 37 is positioned within the coating mechanism 110 so as to be roughly aligned horizontally (for example, in the Y direction) with the block member 26. The cooling unit 37 is a unit for cooling the block member 26. Therefore, the cooling unit 37 can cool the liquid material container 21 attached to the block member 26 and the liquid material inside it. In this embodiment, the controller is the cooling unit 37. However, depending on the purpose of use of the coating mechanism 110, the controller may be a unit capable of heating the block member 26, etc. In any case, the controller can control the temperature of the block member 26.
[0030] The cooling unit 37 is fixed to the block member 26. The cooling unit 37 is detachably fixed to the block member 26 by screws. Although not shown, thermal conductive grease is applied to the joint surface between the cooling unit 37 and the block member 26. This improves the thermal conductivity between the cooling unit 37 and the block member 26, allowing the block member 26 to be cooled or heated efficiently.
[0031] Figure 4 is a photograph of the temperature control unit included in Figure 3. Figure 4 shows the unit viewed from approximately the same direction as in Figure 3. In addition to the temperature control unit 28, Figure 4 also includes a mounting portion 76 and a frame 74. The black rectangular parallelepiped members located in the upper right and lower left of Figure 4 are the mounting portions 76 in Figure 3. The mounting portion 76 is sandwiched between the housing portion 75 and the cooling unit 37. The housing portion 75 attaches the temperature control unit 28 (especially the cooling unit 37) to the mounting portion 76 in the upper right of Figures 3 and 4. In this way, the housing portion 75 supports the cooling unit 37. The needle application portion 104 is also fixed to the temperature control unit 28 by the mounting portion 76 in the lower left of Figures 3 and 4. However, the cooling unit 37 is surrounded by the frame 74. The frame 74 is installed to fix the cooling unit 37 to the needle application portion 104 and to allow the housing portion 75 to support it. A portion of the frame 74 is connected to the needle application portion 104 via the mounting portion 76. Furthermore, other parts of the frame 74 are connected to the housing 75 via other mounting parts 76.
[0032] Figure 5 is a schematic cross-sectional view showing a block member to which a liquid material container is attached. Figure 5 shows the cross-sectional view of the portion along the VV line in Figure 3. As shown in Figure 5, a container mounting portion 26A is formed in the block member 26. The container mounting portion 26A is formed so as to extend from the upper surface of the three-dimensional structure forming the block member 26 to the block through hole 25B on the lower surface. Together with the block through hole 25B, the container mounting portion 26A penetrates the block member 26. The container mounting portion 26A is a space where a component such as aluminum that forms the block member 26 is missing. The space created by the absence of this component is the container mounting portion 26A. The container mounting portion 26A is a region into which the liquid material container 21 is inserted from above and which houses the liquid material container 21.
[0033] The liquid material container 21 has an inner circumferential surface 21A capable of storing and holding liquid material, an outer circumferential surface 21B as the outermost edge of the container, and a container through-hole 25A. The area inside the inner circumferential surface 21A is capable of holding the supplied liquid material. The inner circumferential surface 21A is formed as a hole into which the liquid material container 21 can be inserted from its uppermost part in the Z direction. The lowermost part of the inner circumferential surface 21A in the Z direction is connected to the container through-hole 25A. The container through-hole 25A is formed at the bottom (lowest region) of the liquid material container 21. Together with the container through-hole 25A, the inner circumferential surface 21A penetrates the liquid material container 21.
[0034] The container through-hole 25A extends in the Z direction to allow the application needle 24 inserted into the liquid material container 21 to pass through. The application needle 24 extends in the Z direction and is inserted from the upper opening of the liquid material container 21 toward the lower side. The tip (lowest part) of the inserted application needle 24 is immersed in the liquid material contained within the inner circumferential surface 21A. With the liquid material adhering to the tip of the application needle 24, the application needle 24 penetrates the container through-hole 25A and exits the liquid material container 21 sequentially from the tip. The tip of the application needle 24 comes into contact with the coating surface of the workpiece, such as the plate 8 (well 9A). Alternatively, the liquid material (droplet) adhering to the tip of the application needle 24 comes into contact with the workpiece (substrate, plate 8). This coats the liquid material onto the coating surface. The liquid material may also be applied to an uncoated area of the coating surface of the well 9A. Alternatively, the liquid material may be applied in contact with and overlapping with the liquid material already applied on the coating surface of well 9A.
[0035] As shown in Figure 5, the liquid material container 21 installed in the container mounting section 26A is surrounded on both its sides and bottom by the block member 26, which is made of aluminum or the like. In Figure 5, almost the entire portion of the outer peripheral surface 21B of the liquid material container 21 that extends along the Z direction (side) is in contact with the block member 26. As a result, the block member 26 is positioned in the regions adjacent to the outside of the liquid material container 21 in the X and Y directions of the portion of the outer peripheral surface 21B of the liquid material container 21 that extends along the Z direction (side). This state is described as the side of the liquid material container 21 being surrounded by the block member 26. Furthermore, the region below the region considered to be the side of the liquid material container 21, where the liquid material container 21 tapers to a point, is the bottom of the liquid material container 21. The block member 26 is also positioned in the regions adjacent to the outside of the liquid material container 21 in the X and Y directions of the bottom of the liquid material container 21, so as to be in contact with the liquid material container 21. This state is one in which the bottom of the liquid material container 21 is surrounded by the block member 26.
[0036] Figure 6 is a schematic enlarged cross-sectional view of region VI enclosed by the dotted line in Figure 5. Figure 6 shows the cross-sectional view (vertical plane) perpendicular to the XY plane (horizontal plane) along the Z axis. The bottom and surrounding area of the liquid material container 21 in Figure 5 will be described in more detail with reference to Figure 6.
[0037] The inner circumferential surface 21A has an inner circumferential side portion 21A1 and an inner circumferential bottom portion 21A2. The inner circumferential side portion 21A1 is the region in which the inner circumferential surface 21A extends along the Z direction. The inner circumferential bottom portion 21A2 is located below (towards the bottom) in the Z direction from the inner circumferential side portion 21A1 in the liquid material container 21 inserted into the block member 26. The inner circumferential bottom portion 21A2 is formed at the bottom of the liquid material container 21. In the cross-sectional view of Figure 6, the inner circumferential bottom portion 21A2 is the region in which the inner circumferential surface 21A is inclined toward the center in a plan view of the liquid material container 21.
[0038] The outer circumferential surface 21B has an outer circumferential side portion 21B1 and an outer circumferential bottom portion 21B2. The outer circumferential side portion 21B1 is the portion of the outer circumferential surface 21B that extends along the Z direction. The outer circumferential bottom portion 21B2 is located below (towards the bottom) in the Z direction from the outer circumferential side portion 21B1 in the liquid material container 21 inserted into the block member 26. The outer circumferential bottom portion 21B2 is formed at the bottom of the liquid material container 21. In the cross-sectional view of Figure 6, the outer circumferential bottom portion 21B2 is a region (outer circumferential inclined portion) in which the inner circumferential surface 21A is inclined toward the center in a plan view of the liquid material container 21. In other words, in the cross-sectional view of Figure 6, the outer circumferential bottom portion 21B2 is inclined with respect to the Z direction in which the coating needle 24 extends.
[0039] The container mounting portion 26A of the block member 26 has a side contact portion 26A1 and a bottom contact portion 26A2. The side contact portion 26A1 extends along the Z direction. The bottom contact portion 26A2 is formed below (towards the bottom) the side contact portion 26A1 in the Z direction. The bottom contact portion 26A2 is a region that extends in a direction inclined with respect to the Z direction. The bottom contact portion 26A2 is connected to the side contact portion 26A1.
[0040] Both the outer peripheral side portion 21B1, which serves as the side of the liquid material container 21, and the outer peripheral bottom portion 21B2, which serves as the bottom, are in contact with the block member 26, and the container is surrounded by the block member 26 in the XY plane. Almost the entire outer peripheral side portion 21B1 is in contact with the side contact portion 26A1 of the block member 26 in the regions adjacent to the outer sides in the X and Y directions. A portion of the block member 26 is positioned in the regions adjacent to the side (outer peripheral side portion 21B1) of the liquid material container 21 in the X and Y directions.
[0041] At least a portion of the outer periphery bottom 21B2 contacts the bottom contact portion 26A2 of the block member 26 in the regions adjacent to the outside in the X and Y directions. However, the entire outer periphery bottom 21B2 may contact the bottom contact portion 26A2. In addition, at least a portion of the outer periphery bottom 21B2 contacts the bottom contact portion 26A2 of the block member 26 in the region adjacent to the outside (bottom) in the Z direction. This makes it preferable that a portion of the block member 26 is positioned in both the regions adjacent to the X and Y directions and the regions adjacent to the Z direction of the bottom (outer periphery bottom 21B2) of the liquid material container 21.
[0042] In the above example, the liquid material container 21 and the block member 26 are in contact. However, this is not the only option; for example, the outer peripheral side portion 21B1 and the outer peripheral bottom portion 21B2 may not be in contact with the block member 26, but they may be facing each other (adjacent) in a very close position that allows for heat conduction.
[0043] In the cross-sectional view of Figure 6, the inclination angle of the bottom contact portion 26A2 with respect to the side contact portion 26A1 is equal to the inclination angle of the outer bottom portion 21B2 with respect to the outer side portion 21B1. As a result, not just one point but a certain length of area of the outer bottom portion 21B2 can contact the bottom contact portion 26A2 in the direction of inclination. Within the range in which such an effect can be obtained, the inclination angles of the bottom contact portion 26A2 and the outer bottom portion 21B2 do not have to be perfectly equal, but may have some error.
[0044] Furthermore, in the cross-sectional view of Figure 6, the bottom contact portion 26A2 and the outer bottom portion 21B2 are inclined in a straight line. In other words, in Figure 6, the bottom contact portion 26A2 and the outer bottom portion 21B2 are planar in shape. However, the bottom contact portion 26A2 and the outer bottom portion 21B2 may also be curved (for example, arc-shaped) surfaces in Figure 6. In this case, the angle of inclination of the outer bottom portion 21B2 (or its tangent in the cross-sectional view) with respect to the vertical may increase as it approaches the bottom. In other words, the outer bottom portion 21B2 extends in a direction that approaches the X and Y directions as it approaches the bottom. The same applies to the bottom contact portion 26A2.
[0045] The container mounting portion 26A is narrower in a plan view from the Z direction at the bottom contact portion 26A2 compared to the side contact portion 26A1. The liquid material container 21 is installed so that the narrowed bottom contact portion 26A2 fits to the bottom where the outer periphery bottom portion 21B2 of the liquid material container 21 is formed. As a result, the liquid material container 21 is mounted on the lowest region of the block member 26 such that the outer periphery bottom portion 21B2 overlaps the bottom contact portion 26A2.
[0046] A block through-hole 25B is formed at the lowest point of the block member 26 in the Z direction. The block through-hole 25B is connected to the lowest point of the bottom contact portion 26A2 of the block member 26. The block through-hole 25B extends along the Z direction. The height of the lowest point of the block through-hole 25B, i.e., the lowest point 26P of the block member 26, is equal to the height of the lowest point 21P of the container through-hole 25A of the liquid material container 21 attached to the block member 26. In particular, the height of the lowest point 21P of the outer periphery bottom portion 21B2 and the lowest point 26P of the block member 26 are equal.
[0047] Here, the lowest height refers to the height (coordinate position) in the Z direction, that is, the vertical direction. Here, "equal" does not mean exactly equal, but includes cases where there is a slight error in the coordinate position in the Z direction between the two, as long as the working effect described later is achieved. For example, it includes cases where there is an error in the coordinate position of less than 1 mm between the two. However, it is preferable that the error is less than 0.3 mm, and more preferably less than 0.1 mm. In other words, if the error is ignored, no member will be placed below the container through-hole 25A of the liquid material container 21.
[0048] Both the container through-hole 25A and the block through-hole 25B are substantially circular in a plan view from the Z direction. As shown in Figure 6, the diameter of the block through-hole 25B is larger than the diameter of the container through-hole 25A. Specifically, the diameter of the block through-hole 25B is preferably 5 times or less the diameter of the container through-hole 25A, more preferably 3 times or less, and even more preferably 2 times or less.
[0049] The portions of the block member 26 adjacent to the block through-hole 25B in the X and Y directions are located in the lowest region of the block member 26. The central region of this lowest part of the block member 26, as viewed from the Z direction in plan, has a bottom contact portion 26A2 formed on its upper surface, which is inclined in a C-shape. The bottom contact portion 26A2 is formed above the block through-hole 25B in the Z direction. The bottom contact portion 26A2 is inclined such that the thickness of the lowest region of the block member 26 in the vertical direction (Z direction) gradually decreases as it approaches the block through-hole 25B. The block through-hole 25B is formed in the innermost part of the block member 26 in plan view. In other words, the bottom contact portion 26A2 is inclined such that the thickness of the lowest region of the block member 26 in the vertical direction (Z direction) gradually decreases as it approaches the center of the liquid material container 21 in the X and Y directions.
[0050] Figure 7 is a schematic cross-sectional view showing the configuration in which the block member is fixed to the cooling unit. Figure 7 shows the cross-sectional view of the portion along the line VII-VII in Figure 3. As shown in Figure 7, the cooling unit 37 includes a Peltier element 31, a heat sink 34, and a cooling fan 35. The Peltier element 31 has its heat transfer surface, which serves as the main surface, positioned, for example, along the XZ plane in Figure 7. The Peltier element 31 is fixed so that one of its heat transfer surfaces 31a is in contact with the surface of the block member 26. The aforementioned thermal conductive grease is applied to the heat transfer surface 31a.
[0051] The heat sink 34 is installed so as to be in contact with the Peltier element 31. Preferably, the heat sink 34 is installed so as to be in contact with the main surface on which heat is transferred from the Peltier element 31. The heat sink 34 is fixed so as to be in contact with the heat transfer surface 31b of the Peltier element 31 opposite to the heat transfer surface 31a. The cooling fan 35 is fixed so as to be in contact with the heat sink 34 on the side opposite to the Peltier element 31. In other words, the Peltier element 31, heat sink 34, and cooling fan 35 are arranged in that order from the block member 26 side.
[0052] The thermal insulation material 27 covers at least a portion of the top and side surfaces of the block member 26 from the outside. Specifically, the thermal insulation material 27 is arranged as shown in Figures 5 and 7, for example. Figure 8 is a photograph of the block member holding the liquid material container as shown in Figure 7. The thermal insulation material 27 shown in Figures 7 and 8 also covers a portion of the Peltier element 31. The thermal insulation material 27 is made of a material with very low thermal conductivity compared to the block member 26, etc., and is spread out in a thin sheet. Specifically, for example, the thermal conductivity of the thermal insulation material 27 is 0.023 W / m / K. This is attached to the surface of the block member 26, etc. The thickness of the thermal insulation material 27 is preferably 5 mm or more.
[0053] The thermal insulation material 27 is not installed on the upper surface of the block member 26 in the area that overlaps with the inner circumferential surface 21A of the liquid material container 21 attached to the block member 26. A thermal insulation through-hole 25C is formed directly above the inner circumferential surface 21A, due to the absence of the thermal insulation material 27. Furthermore, the thermal insulation material 27 is not installed on the lower surface of the block member 26 in the area that overlaps with the inner circumferential surface 21A in a plan view. Therefore, the thermal insulation material 27 is not positioned directly above or below the inner circumferential surface 21A. On the lower side of the block member 26, it is preferable that the thermal insulation material 27 is not installed in the area that overlaps with the area located outside the block through-hole 25B in the X and Y directions. In this way, the downward projection of the block member 26 in the Z direction relative to the liquid material container 21 can be suppressed in that area. This suppresses interference of the block member 26 with the workpiece (a member to be coated, such as a substrate or plate 8). It also suppresses an increase in the gap in the Z direction between the workpiece and the liquid material container 21. Therefore, problems such as a decrease in the accuracy of the application position of the application needle 24, caused by interference and increased gaps, can be suppressed. In addition, the possibility that the area to which the liquid material is applied will be limited, such as when the application needle 24 does not reach the workpiece, can be reduced. As a result, the liquid material can be applied to the workpiece more stably.
[0054] Figure 9 is a schematic side view showing how the frame surrounding the temperature control unit is fixed to the needle application unit and the housing unit by mounting parts. In Figure 9, as in Figure 7, a side view is shown from the negative side in the X direction. Figure 9 shows roughly the same configuration as Figure 7, with the addition of a frame 74, mounting parts 76, housing unit 75, and needle application unit 104. Although not shown in Figure 9, the frame 74 is fixed to the cooling unit 37 by screws. The frame 74 surrounds the lowest outer frame of the temperature control unit 28, which consists of a block member 26 covered with thermal insulation material 27 and a cooling unit 37. The frame 74 extends horizontally along the depth direction (X direction) of the paper in Figure 9, for example, the portion adjacent to the positive side in the Y direction of the block member 26 (first portion) (see Figures 3 and 4). Furthermore, the frame 74 has a portion (second portion) that almost overlaps with the portion where the Peltier element 31 is placed in a plan view from the Z direction, and this portion extends horizontally along the plane depth direction (X direction) of Figure 9 (see Figures 3 and 4). The second portion is positioned above the first portion in the Z direction.
[0055] Mounting portions 76 are installed so as to rest on the first and second portions of the frame 74. The mounting portion 76 on the first portion attaches the frame 74 (and the temperature control unit 28 enclosed within it) to the needle application portion 104. The mounting portion 76 on the second portion attaches the temperature control unit 28 to the housing portion 75. The housing portion 75 is a member having a shape that connects the uppermost part of the needle application portion 104 in the Z direction to the mounting portion 76 on the second portion.
[0056] The housing portion 75 has the following third and fourth portions. The third portion is fixed to the uppermost part of the needle application portion 104 in the Z direction. The third portion extends, for example, along the horizontal direction (Y direction). The fourth portion is fixed to the mounting portion 76 above the second portion. The fourth portion extends, for example, along the vertical direction (Z direction). At the boundary between the third and fourth portions, it is bent so that its direction of extension changes by approximately 90°. As a result, when viewed from the negative X direction, the housing portion 75 has a shape like an inverted L.
[0057] Figure 10 is a schematic side view showing the cooling fan in Figure 9 viewed from the negative Y-direction. As shown in Figure 10, when the cooling fan 35, located on the far right of Figure 9, is viewed from the side, the mounting portion 76 on the second part and the housing portion 75 (fourth part) above it are arranged side by side directly above it. A magnet 78 is embedded inside the mounting portion 76. Part of the surface of the magnet 78 may be exposed to the members constituting the mounting portion 76. The magnet 78 attaches the temperature control unit 28 (the second part of the frame 74 surrounding it) to the fourth part of the housing portion 75. In other words, the housing portion 75 is fixed to the temperature control unit 28 (frame 74). Similarly, the same magnet 78 is also embedded inside the mounting portion 76 in the lower left of Figure 9. This magnet 78 fixes the temperature control unit 28 (the first part of the frame 74 surrounding it) to the lower part of the needle coating portion 104. The mounting portion 76 can be fixed in place by the magnet 78 if the housing portion 75, needle application portion 104, and frame 74, which are the mating members to be fixed, are made of a metal material that is attracted by the magnet. Alternatively, the mating members to which the mounting portion 76 is fixed may have magnets embedded in them, similar to the mounting portion 76. The embedded magnets may be exposed to the surface of the mating member.
[0058] Figure 11 is a photograph of the connection between the housing and the temperature control unit, including the fastener shown in Figure 10. In other words, Figure 11 photographically shows the part shown in Figure 10. As shown in Figures 10 and 11, the fastener 77 engages with the fourth part of the housing 75. The fastener 77 may be a commercially available product that is generally known. For example, the fastener 77 may be a commercially available fastener. The fastener 77 has a shape that is bent, for example, in an L-shape, as shown in Figure 10. The fastener 77 may be installed on the mounting part 76 and engaged with a part of the housing 75. Alternatively, the fastener 77 may have two parts, a first part and a second part. That is, the fastener 77 is divided into a first part and a second part. An example of this is shown in Figure 11, for example. The first part is coupled to a part of either the frame 74 or the temperature control unit 28. The second part is coupled to the housing 75. Such a configuration is also possible. The coating mechanism 110 may have only a fastener 77, or it may have both a fastener 77 and a magnet 78 (a mounting portion 76 into which the magnet 78 is embedded).
[0059] <Characteristics of the shape of each component of the coating mechanism 110> In addition to the above, each component shown in each figure may have the following morphological characteristics.
[0060] As shown in Figures 3 and 7, the block member 26 has a main body portion 26-1 and a fixing portion 26-2. The main body portion 26-1 and the fixing portion 26-2 constitute a single block member 26. The main body portion 26-1 is the central part of the entire block member 26. The main body portion 26-1 has a container mounting portion 26A for inserting the liquid material container 21.
[0061] As shown in Figure 7, the main body portion 26-1 protrudes downward in the Z direction from the region adjacent to the container mounting portion 26A, compared to the region outside that adjacent region in the X and Y directions (the region away from the container mounting portion 26A). The outer circumference of this portion slopes downward in a stepped manner. The lowest part of the liquid material container 21 (such as the outer bottom portion 21B2) can be placed in this portion.
[0062] The uppermost part of the main body 26-1 may also have an edge (projection) adjacent to the outer edge in the Y direction (horizontal direction) of the uppermost part of the liquid material container 21 (the part extending along the left-right direction in the figure). This edge (projection) is formed, for example, in the region of the main body 26-1 adjacent to the fixing part 26-2. It protrudes upward in the Z direction compared to the rest of the main body 26-1.
[0063] The fixing portion 26-2 is the region where the block member 26 is fixed to the cooling unit 37. The cooling unit 37 is adjacent to the negative side of the main body portion 26-1 in the Y direction. Attaching the cooling unit 37 to this portion is easy. The fixing portion 26-2 is positioned above the main body portion 26-1 in the Z direction. In the Z direction, the coordinate positions of the main body portion 26-1 and the fixing portion 26-2 partially overlap, but the fixing portion 26-2 protrudes above this overlap. Furthermore, the fixing portion 26-2 is not positioned at a location where its Z coordinate is equal to the lowest part of the main body portion 26-1. Therefore, the uppermost and lowest parts in the Z direction are stepped (have steps) at the boundary between the main body portion 26-1 and the fixing portion 26-2. In Figure 7, when the center line C in the left-right direction (Y direction) of the block member 26 is the axis of symmetry, the block member 26 is asymmetrical.
[0064] As shown in Figure 3, the fixing portion 26-2 of the block member 26 may be larger in the X direction (diagonal depth direction of the paper) than the main body portion 26-1. However, the fixing portion 26-2 may be smaller in the X direction than the main body portion 26-1, or they may be approximately equal in size. Increasing the X direction dimension of the fixing portion 26-2 allows the fixing portion 26-2 and the cooling unit 37 to be fixed over a larger area.
[0065] As shown in Figure 5, at the bottom of the block member 26, the outermost parts in the X and Y directions (horizontal direction) are formed on the container installation section 26A side (inward) compared to the areas other than the bottom. At the bottom of the block member 26, the heat insulating material 27 is formed thicker in the horizontal direction compared to the areas other than the bottom. This enhances the cooling effect of the liquid material, especially at the bottom of the block member 26.
[0066] The block member 26 has a bottom section (the area where the block through-hole 25B is formed) that protrudes inward in a plan view. The area immediately above this inwardly protruding area, and the area between it and the upper area, is thinner than the upper area in both the X and Y directions. This area is partially removed from the outer periphery. As a result, the outer periphery of this area forms a stepped structure. The block member 26 having the above configuration has a layout that is advantageous for achieving its intended effects.
[0067] As shown in Figure 3, the dimensions of the mounting portion 76 in the X and Y directions may be larger than those of the housing portion 75 (the fourth portion extending vertically) which is fixed directly above it. This increases the force with which the mounting portion 76 is fixed to the housing portion 75.
[0068] Frame 74 has a fifth section connecting the first and second sections described above. The fifth section is shown on the front side in the X direction in Figure 3 and in Figure 9. The fifth section extends from the lower left to the upper right in Figures 3 and 9. The fifth section extends diagonally in the YZ plane. In addition to the negative side (front side) in the X direction that appears in Figures 3 and 9, the fifth section is also positioned on the positive side (back side) in the X direction. The temperature control unit 28 is positioned between this pair of fifth sections in the X direction. This fixes the position of the temperature control unit 28 in the X direction.
[0069] <Effects and Effects> The coating mechanism 110 according to this disclosure comprises a coating needle 24, a liquid material container 21, and a temperature control unit 28. The coating needle 24 coats the workpiece (plate 8) with liquid material. The liquid material container 21 houses and holds the liquid material, and has a container through-hole 25A at its bottom through which the coating needle 24 can pass. The temperature control unit 28 can accommodate the liquid material container 21. The temperature control unit 28 includes a block member 26 and a controller (cooling unit 37). The block member 26 can accommodate the liquid material container 21. The cooling unit 37 is fixed to the block member 26 and can control the temperature of the block member 26. The block member 26 can accommodate the liquid material container 21 so as to surround both the sides and the bottom of the liquid material container 21. The height (Z coordinate) of the lowest part 21P of the container through hole 25A of the liquid material container 21 attached to the block member 26 is equal to the height (Z coordinate) of the lowest part 26P of the block member 26.
[0070] A block member 26, whose temperature is controlled by a controller (cooling unit 37), surrounds both the sides and bottom of the liquid material container 21. Therefore, compared to surrounding only one of the sides or bottom, the block member 26 can uniformly control the temperature of the entire liquid material in the liquid material container 21. This is because a wider area of the liquid material container 21 is surrounded by the block member 26, and its temperature approaches that of the block member 26. As a result, the state of temperature-responsive liquid materials (those whose physical properties change, such as gelling, depending on the temperature) can be kept constant. Consequently, a wider variety of liquid materials can be stably applied while controlling their temperature. In other words, temperature-responsive liquid materials can be stably applied.
[0071] For example, if a liquid material contains a solvent that gels upon heating, it can be stably transferred by maintaining a sol state through cooling. In other words, the problem of difficulty in transfer with a coating needle due to the gelation of the liquid material can be suppressed. Furthermore, by controlling the temperature of the liquid material, the metabolism of cells contained in the liquid material can be reduced, thereby suppressing damage to the cells. In this embodiment, the liquid material in the liquid material container 21 is a gel raw material mainly composed of cells and biomaterials. Biomaterials include biologically derived protein materials. The gel raw material is a precursor for becoming a gel. That is, a gel is formed when the gel raw material is solidified. This allows for cell culture using the liquid material.
[0072] The height of the lowest part 21P of the container through-hole 25A is equal to the height of the lowest part 26P of the block member 26. This suppresses the downward projection of the block member 26 in the Z direction relative to the liquid material container 21. This suppresses interference of the block member 26 with the workpiece (the material to be coated, such as a substrate or plate 8). It also suppresses an increase in the Z-direction gap between the workpiece and the liquid material container 21. This suppresses problems such as a decrease in the accuracy of the coating position of the coating needle 24 caused by interference and an increase in the gap. It also reduces the possibility that the area to which the liquid material is coated will be limited, such as when the coating needle 24 cannot reach the workpiece. As a result, the liquid material can be applied to the workpiece more stably.
[0073] Furthermore, the container through-hole 25A does not protrude downward from the temperature control unit 28. As a result, the liquid material is less affected by the external temperature until immediately before application by the application needle 24. This makes it easier to control the temperature of the liquid material inside the liquid material container 21.
[0074] In the coating mechanism 110 described above, the outer peripheral surface 21B of the liquid material container 21 has an outer peripheral bottom portion 21B2 at the lower part of the liquid material container 21 that is inclined with respect to the extending direction (Z direction) of the coating needle 24. The height of the lowest part 21P of the outer peripheral bottom portion 21B2 and the lowest part 26P of the block member 26 may be equal. This provides the same effects as described above.
[0075] In the coating mechanism 110 described above, a block through-hole 25B is formed at the bottom of the block member 26. The diameter of the block through-hole 25B may be larger than the diameter of the container through-hole 25A. In this way, even if the liquid material container 21 is slightly misaligned during alignment, it will not affect the penetration operation of the coating needle 24. This is because even if the container through-hole 25A is misaligned, there is a high probability that the entire hole, or at least a part of it, will be positioned to overlap planarly with the block through-hole 25B.
[0076] In the coating mechanism 110 described above, the portion of the block member 26 adjacent to the outside of the block through-hole 25B may be inclined such that the thickness in the vertical direction (Z direction: direction along the vertical direction) gradually decreases as it approaches the block through-hole 25B.
[0077] In this way, the thickness of the bottom of the block member 26 is gradually changed. The bottom of the block member 26 is the region of the block member 26 that covers the bottom of the liquid material container 21. In the cross-sectional view of Figure 6, the outer circumferential surface of the bottom of the liquid material container 21 is an outer circumferential bottom 21B2 that is inclined with respect to the Z direction. Due to the outer circumferential bottom 21B2, the width of the liquid material container 21 narrows towards the center in a plan view. The bottom of the block member 26 has a bottom contact portion 26A2 as an inclined portion on its upper surface. Therefore, the bottom of the block member 26 becomes thinner in the vertical direction toward the center. As a result, the bottom contact portion 26A2 and the outer circumferential bottom 21B2 fit together so that they have a contact area as shown in Figure 6. Therefore, the bottom of the liquid material container 21 can be cooled by contact with the cooled block member 26. In other words, the entire liquid material container 21, including its bottom, can be uniformly temperature-controlled (cooled).
[0078] In the coating mechanism 110 described above, the controller is a cooling unit 37. The cooling unit 37 has a Peltier element 31 and a heat sink 34. The heat sink 34 is in contact with the Peltier element 31. This configuration is also acceptable.
[0079] As shown in Figure 7, the heat transfer surface 31a of the Peltier element 31 is in contact with the outer circumferential surface of the block member 26. The heat transfer surface 31b of the Peltier element 31 is in contact with the heat sink 34. In this way, the Peltier element 31 transfers heat from the block member 26 from the heat transfer surface 31a side to the heat transfer surface 31b side. The heat transferred to the heat transfer surface 31b side is released to the outside of the block member 26 by the heat sink 34. In this way, the Peltier element 31 cools the block member 26 by transferring heat to the outside. As the block member 26 is cooled, the liquid material container 21 attached to it can also be cooled.
[0080] In Figure 7, a cooling fan 35 is installed on the outside of the heatsink 34. The air blown by the cooling fan 35 cools the heat that has moved from the block member 26 to the Peltier element 31 and then to the heatsink 34.
[0081] In the coating mechanism 110 described above, the insulating material may cover at least a portion of the top and side surfaces of the block member 26. This prevents external heat from being transferred from the area covered by the insulating material 27 to the block member 26, thus suppressing the problem of the cooled block member 26 rising again. Furthermore, by covering the block member 26 with the insulating material 27, heat exchange between the block member 26 and its surroundings can be minimized. Therefore, even if the cooling unit 37 is made small, the liquid material container 21 can be sufficiently cooled.
[0082] In the coating mechanism 110 described above, the insulating material 27 may have through-holes 25C formed in the upper surface of the block member 26 in a region that overlaps with the inner circumferential surface 21A of the liquid material container 21 attached to the block member 26. This prevents the problem of the insulating material 27 obstructing the penetration of the coating needle 24 into the liquid material container 21.
[0083] In the coating mechanism 110 described above, the block member may be made of aluminum. This allows for inexpensive and highly efficient temperature control of the block member 26. This is because aluminum has high thermal conductivity and is inexpensive.
[0084] The coating mechanism 110 described above may further include a housing portion 75 and a mounting portion 76. The housing portion 75 supports the coating needle 24 and the liquid material container 21. The mounting portion 76 attaches the temperature control unit 28 to the housing portion 75. The temperature control unit 28 may be attached to the housing portion 75 by a magnet 78 on the mounting portion 76.
[0085] In this way, the magnetic force of the magnet 78 firmly fixes the housing 75 and the temperature control unit 28 (and the frame 74 surrounding it). Also in this way, the magnetic force of the magnet 78 firmly fixes the needle coating unit 104 and the temperature control unit 28 (and the frame 74 surrounding it).
[0086] The coating mechanism 110 described above may further include a housing portion 75. The temperature control unit 28 can be fixed to the housing portion 75 by engaging the fastener 77 with the housing portion 75. Such a configuration is also acceptable.
[0087] In this way, the fastener 77 can fix the housing 75 and the temperature control unit 28 (and the frame surrounding it) more securely than in the case where it is not present (for example, when only the mounting part 76 with the magnet 78 embedded is present). Furthermore, the needle application part 104 and the temperature control unit 28 (and the frame surrounding it) can be fixed more securely.
[0088] Furthermore, the mounting portion 76 with the magnet 78 and the fastener 77 both allow the temperature control unit 28 to be easily attached to and detached from the housing portion 75 and the needle application portion 104. This reduces the cost of replacing the liquid material container 21 or the liquid material 70 inside it. Also, if the application mechanism 110 does not require temperature control of the liquid material container 21, the application can be performed with the temperature control unit 28 detached from the application mechanism 110.
[0089] A liquid material coating apparatus 100 according to this disclosure may include the coating mechanism 110 (see Figure 3) and a holder (X-axis stage 101, Y-axis stage 102) for holding the workpiece (plate 8), as shown in Figure 1. A liquid material coating apparatus 100 formed in this manner can achieve the same effects as described above.
[0090] Furthermore, the method for applying liquid materials using the above-described application mechanism 110 may have the following characteristics. In the method for applying liquid materials according to this disclosure, the liquid material attached to the tip of the application needle 24 is supplied to the workpiece (plate 8). In the step of supplying the liquid material, the supplied liquid material is cooled to below room temperature. This suppresses the gelation of liquid materials that gel upon heating, such as collagen and Matrigel. Therefore, liquid materials having such properties can be stably applied in a liquid (sol) state. The liquid material is cooled by the cooling unit 37 of the temperature control unit 28. [Examples]
[0091] The performance of the temperature control unit 28 constituting the coating mechanism 110 described in the above embodiment was evaluated. Figure 12 is a schematic cross-sectional view showing the temperature measurement locations in Example 1 of the block member to which the liquid material container of Figure 5 is attached. In Figure 12, measurement positions A and B, where the temperature was measured in this embodiment, are shown on a block member 26 similar to that in Figure 5.
[0092] As shown in Figure 12, a liquid material container 21 for the coating method was installed in the temperature control unit 28 of the coating mechanism 110. A Peltier element 31 (see Figure 7) was driven to cool the block member 26 and the liquid material container 21.
[0093] Figure 13 is a graph showing the results of temperature measurements at measurement positions A and B using thermocouples. Measurement position A is near the inner bottom portion 21A2 of the liquid material container 21. Measurement position B is the position where the upper part of the outer side portion 21B1 of the liquid material container 21 and the container mounting portion 26A of the block member 26 are in contact (adjacent).
[0094] At the time t1 shown in Figure 13, the set temperature of the cooling unit 37 was -1°C. The temperature at measurement position A at time t1 was 4.3°C. At the time t2 shown in Figure 13, the set temperature of the cooling unit 37 was set to -2°C. The temperature at measurement position A at time t2 was 3.2°C. The temperature at measurement position B was 2.7°C at time t1 and 1.7°C at time t2. The ambient temperature in the room where the coating mechanism 110 was installed at this time was 24°C. Time t1 is the point in time between 600 seconds and 1200 seconds from the start of measurement. Time t2 is the point in time after 1200 seconds from the start of measurement.
[0095] Generally, bio-derived protein materials such as collagen and Matrigel are used to construct three-dimensional cell tissues. Collagen and Matrigel maintain a sol state when cooled to 4°C. Therefore, it has been found that collagen and Matrigel can be used stably by using the temperature control unit 28 described above.
[0096] When the ambient temperature is around 24°C, it takes about 10 minutes from the start of cooling by the temperature control unit 28 until the temperature inside the liquid material container 21 stabilizes at the cooled temperature. Therefore, when using the coating mechanism 110, it is preferable to supply the liquid material into the liquid material container 21 at least 10 minutes after the start of cooling by the temperature control unit 28. In this way, the liquid material can be maintained at a cooled temperature of about 4°C. [Examples]
[0097] A liquid material containing cells and a temperature-responsive bio-derived protein material is applied to the material to be processed. In this example, the stability of the liquid material application was evaluated using a temperature control unit. The room temperature during this evaluation was 24°C.
[0098] The coating materials used were a first coating solution (first bio-ink), a second coating solution (second bio-ink) supplied on top of it, and a culture medium dropped to immerse them. The first coating solution consisted of 10 mg / mL Matrigel as the solvent and normal human cardiac fibroblasts contained therein. The cell volume fraction in the first coating solution was 25%. The second coating solution consisted of phosphate-buffered saline (+) (PBS (+)) with methylcellulose added as the solvent. DMEM (High glucose) containing 10% by volume of FBS was used as the culture medium.
[0099] The first coating solution was filled into a liquid material container 21 that had been pre-cooled to 4°C or below. Specifically, the liquid material container 21, filled with the cooled first coating solution, was inserted and installed into the container mounting section 26A of the block member 26 of the temperature control unit 28, which had been pre-cooled to 1°C or more and 4°C or below. The temperature control unit 28 with the first coating solution installed in this manner was installed in the coating mechanism 110 (see Figure 3) together with the coating needle 24. The first coating solution was applied to the coating surface of well 9A (see Figure 1) of plate 8 using the needle coating section 104, and then the second coating solution was dropped from the dropping section 105 (see Figure 1) so as to cover the first coating solution. After that, the culture medium was dropped from a dropping section not shown in Figure 1. Cell tissue was thus constructed.
[0100] The process was basically carried out according to the procedure described above, but the state of the applied liquid was observed at appropriate intervals. The results are shown in Figures 14 to 17.
[0101] Figure 14 shows the observation results of the coated object immediately after the first coating solution was applied to the coating surface of the well. Figure 15 shows the observation results of the coated object after the culture medium was added to the first coating solution in Figure 14. Figure 14 shows the state immediately after the first coating solution was applied. Figure 15 shows the state after the second coating solution was dropped onto the first coating solution, and then the culture medium was dropped onto it. As shown in Figures 14 and 15, the coating solution containing Matrigel is applied stably. From this, it was found that Matrigel does not gel in the liquid material, but maintains a stably sol state in the liquid material container 21.
[0102] Figure 16 shows the observation of the coated object immediately after the first coating solution was filled into the liquid material container, allowed to stand for 35 minutes after cooling, and then applied to the coating surface of the well and the culture medium was added. Figure 17 shows the observation of the coated object from Figure 16 after it had stood for one day. In both Figures 16 and 17, the second coating solution was added dropwise to the first coating solution, and then the culture medium was added dropwise.
[0103] Matrigel requires 30 minutes to fully gel at 37°C. However, gelation of Matrigel progresses even at room temperature of around 25°C. As shown in Figure 16, even at room temperature of 24°C, the Matrigel in the liquid material container 21, which has been cooled for 35 minutes by the temperature control unit 28 installed in the room, can be applied from the application needle 24 without gelling, just as immediately after filling the liquid material container 21. Therefore, it was confirmed that the temperature control unit 28 has a cooling effect that allows Matrigel to maintain a stable sol state in the liquid material container 21 for more than 30 minutes, even at room temperature of 24°C. Furthermore, Figure 17 shows that the cells are adhering and spreading compared to Figure 16. Therefore, the cooling by the temperature control unit 28 does not affect the survival of cells in the liquid material container 21.
[0104] Furthermore, when the cooling unit 37 mounted on the temperature control unit 28 was set to -2°C, the liquid material (cell suspension) in the liquid material container 21 froze. From this, it was found that with the above setting, the liquid material container 21 was cooled to below 0°C. Also, when the above setting was set to 0°C, the liquid material (cell suspension) containing Matrigel neither gelled nor froze even after being left undisturbed for more than 30 minutes. From this, it can be concluded that with the above setting, the temperature inside the liquid material container 21 was maintained between 0°C and 4°C.
[0105] <Other> In Example 2 described above, a bio-derived protein material is used as the solvent included in the first coating solution. This material was selected because it is compatible with cells (has biocompatibility) and also has temperature responsiveness. However, in Example 2, other materials that are biocompatible and temperature responsive may be used as the solvent included in the first coating solution. Specifically, any of the following may be used as the solvent: protein, polysaccharide, or synthetic polymer. As the protein, either collagen or gelatin may be used. As the polysaccharide, either agarose or gellan gum may be used. As the synthetic polymer, poly-N-isopropylacrylamide (PIPAAm) may be used.
[0106] In Example 2 described above, the temperature control unit 28 was used to suppress the gelation of the liquid material at room temperature. As in Example 2, the temperature control unit 28 can also be used to cool a small amount of liquid material in a liquid material container 21 containing only a small amount of liquid material that does not gel upon cooling, in order to suppress evaporation of the liquid material due to heating. When used for this purpose, the temperature control unit 28 allows for the stable application of a small amount of liquid material to the desired workpiece.
[0107] (Note) The various aspects of this disclosure are summarized below as an appendix.
[0108] (Note 1) A coating needle for applying liquid material to a workpiece, A liquid material container that stores and holds the aforementioned liquid material, and has a container through-hole formed at the bottom through which the application needle can pass; The system includes a temperature control unit to which the liquid material container can be attached, The temperature control unit is A block member to which the aforementioned liquid material container can be attached, The controller is fixed to the block member and is capable of controlling the temperature of the block member, The block member is capable of attaching the liquid material container so as to surround both the sides and the bottom of the liquid material container. A coating mechanism in which the height of the lowest part of the container through-hole of the liquid material container attached to the block member is equal to the height of the lowest part of the block member.
[0109] (Note 2) The outer circumferential surface of the liquid material container has an outer circumferential bottom portion at the lower part of the liquid material container that is inclined with respect to the direction in which the coating needle extends. The coating mechanism described in Appendix 1, wherein the lowest part of the outer periphery bottom and the lowest part of the block member are at the same height.
[0110] (Note 3) A block through-hole is formed at the lowest part of the block member. The coating mechanism according to Appendix 1 or 2, wherein the diameter of the block through-hole is larger than the diameter of the container through-hole.
[0111] (Note 4) The coating mechanism described in Appendix 3, wherein the portion of the block member adjacent to the outside of the block through-hole is inclined such that its thickness in the vertical direction gradually decreases as it approaches the block through-hole.
[0112] (Note 5) The aforementioned controller is a cooling unit, The cooling unit is a coating mechanism according to any one of the appendices 1 to 4, comprising a Peltier element and a heat sink in contact with the Peltier element.
[0113] (Note 6) The coating mechanism according to any one of the appendices 1 to 5, wherein at least a portion of the upper surface and side surface of the block member is covered with thermal insulation material.
[0114] (Note 7) The coating mechanism according to Appendix 6, wherein the insulating material has through-holes formed in the upper surface of the block member in a region that overlaps with the inner circumferential surface of the liquid material container attached to the block member.
[0115] (Note 8) The coating mechanism according to any one of the appendices 1 to 7, wherein the block member is made of aluminum.
[0116] (Note 9) A housing portion that supports the coating needle and the liquid material container, The temperature control unit further comprises a mounting portion for attaching it to the housing, The temperature control unit is attached to the housing by a magnet on the mounting portion, and is a coating mechanism according to any one of the appendices 1 to 8.
[0117] (Note 10) The housing further comprises the coating needle and the liquid material container, The coating mechanism according to any one of the appendices 1 to 8, wherein the temperature control unit can be fixed to the housing by engaging a fastener with the housing.
[0118] (Note 11) The coating mechanism described in any one of the appendices 1 to 10, A liquid material coating apparatus comprising a holding stand for holding the workpiece to be processed.
[0119] (Note 12) A method for applying the liquid material using the application mechanism described in any one of the appendices 1 to 11, A step of supplying the liquid material attached to the tip of the coating needle to the workpiece, A method for applying a liquid material, comprising the step of cooling the liquid material supplied in the supply step to below room temperature.
[0120] (Note 13) The method for applying the liquid material described in Appendix 12, wherein the liquid material is a gel raw material mainly composed of cells and biomaterials. [Explanation of Symbols]
[0121] 20 Applicator needle holder, 21 Liquid material container, 21A Inner circumferential surface, 21A1 Inner circumferential side surface, 21A2 Inner circumferential bottom surface, 21B Outer circumferential surface, 21B1 Outer circumferential side surface, 21B2 Outer circumferential bottom surface, 21P, 26P Bottommost part, 25A Container through hole, 25B Block through hole, 25C Insulation material through hole, 26 Block member, 26-1 Main body part, 26-2 Fixing part, 26A Container mounting part, 26A1 Side contact part, 26A2 Bottom contact part, 27 Insulation material, 31 Peltier element, 31a, 31b Heat transfer surface, 34 Heat sink, 35 Cooling fan, 35A Movable base, 37 Cooling unit, 41 Servo motor, 43 Cam, 44 Bearing, 45 Cam connecting plate, 46 Movable part, 74 Frame, 75 Housing part, 76 Mounting part, 77 Fastener, 78 Magnet, 100 Coating device, 101 X-axis stage, 102 Y-axis stage, 104 Needle coating part, 105 Dropping part, 106 Observation optical system, 107 Coating part, 110 Coating mechanism.
Claims
1. A coating needle for applying liquid material to a workpiece, A liquid material container that stores and holds the aforementioned liquid material, and has a container through-hole formed at the bottom through which the application needle can pass; The system includes a temperature control unit to which the liquid material container can be attached, The temperature control unit is A block member to which the aforementioned liquid material container can be attached, The controller is fixed to the block member and is capable of controlling the temperature of the block member, The block member is capable of attaching the liquid material container so as to surround both the sides and the bottom of the liquid material container. A coating mechanism in which the height of the lowest part of the container through-hole of the liquid material container attached to the block member is equal to the height of the lowest part of the block member.
2. The outer circumferential surface of the liquid material container has an outer circumferential bottom portion at the lower part of the liquid material container that is inclined with respect to the direction in which the coating needle extends. The coating mechanism according to claim 1, wherein the lowest part of the outer periphery bottom and the lowest part of the block member are at the same height.
3. A block through-hole is formed at the lowest part of the block member. The coating mechanism according to claim 1, wherein the diameter of the block through-hole is larger than the diameter of the container through-hole.
4. The coating mechanism according to claim 3, wherein the portion of the block member adjacent to the outside of the block through-hole is inclined such that its thickness in the vertical direction gradually decreases as it approaches the block through-hole.
5. The aforementioned controller is a cooling unit, The coating mechanism according to claim 1 or 2, wherein the cooling unit comprises a Peltier element and a heat sink in contact with the Peltier element.
6. The coating mechanism according to claim 1 or 2, wherein at least a portion of the upper surface and side surface of the block member is covered with an insulating material.
7. The coating mechanism according to claim 6, wherein the insulating material has through-holes formed in the upper surface of the block member in a region that overlaps with the inner circumferential surface of the liquid material container attached to the block member.
8. The coating mechanism according to claim 1 or 2, wherein the block member is made of aluminum.
9. A housing portion that supports the coating needle and the liquid material container, The temperature control unit further comprises a mounting portion for attaching it to the housing, The coating mechanism according to claim 1 or 2, wherein the temperature control unit is attached to the housing by a magnet on the mounting portion.
10. The housing further comprises the coating needle and the liquid material container, The coating mechanism according to claim 1 or 2, wherein the temperature control unit can be fixed to the housing by a fastener engaging with the housing.
11. The coating mechanism described in claim 1, A liquid material coating apparatus comprising a holding stand for holding the workpiece to be processed.
12. A method for applying the liquid material using the coating mechanism described in claim 1, A step of supplying the liquid material attached to the tip of the coating needle to the workpiece, A method for applying a liquid material, comprising the step of cooling the liquid material supplied in the supply step to below room temperature.
13. The method for applying a liquid material according to claim 12, wherein the liquid material is a gel raw material mainly composed of cells and biomaterials.
Citation Information
Patent Citations
Liquid material application mechanism and liquid material application device
JP2021023906A