Optical element
The optical element with a resin lens and high-modulus substrate addresses manufacturing and deformation issues by using a specific connection shape, ensuring rigidity and compactness.
Patent Information
- Application Number
- JP2025172344
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-12-15
- Filing Date
- 2025-10-14
- Publication Date
- 2026-01-21
AI Technical Summary
Lenses with cutouts on the periphery are difficult to manufacture and prone to deformation, especially in glass and resin lenses, due to non-uniform stress distribution.
An optical element comprising a resin lens with a cut surface on its outer periphery supported by a translucent substrate with a higher Young's modulus, featuring a connection shape that includes edge, chamfered, or rounded shapes, with a shorter distance from the center to the cut surface compared to the uncut periphery, enhancing rigidity and reducing deformation.
The solution allows for appropriate manufacturing and minimizes deformation of the optical element, maintaining optical properties and reducing size while ensuring rigidity.
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Figure 2026010078000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to an optical element. [Background technology]
[0002] In recent years, imaging devices such as cameras are often required to be both compact and have high image quality. For example, Patent Documents 1 and 2 describe cutting a portion of the outer periphery of a circular lens. By cutting a portion of the outer periphery, the lens can be made smaller while leaving an area on the imaging element that contributes to image formation, thereby achieving both compactness and high image quality. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-79047 [Patent Document 2] Japanese Patent Application Laid-Open No. 2010-243763 Summary of the Invention [Problem to be solved by the invention]
[0004] However, lenses with a cutout on the periphery are relatively difficult to mold, for example, in the case of glass lenses, and are prone to deformation, for example, in the case of resin lenses, because stress is less uniform than in, for example, circular lenses. Therefore, there is a demand for such lenses, regardless of their intended use, such as for cameras, that can be manufactured appropriately and are less prone to deformation.
[0005] The present invention has been made in view of the above problems, and has an object to provide an optical element that can be appropriately manufactured and is difficult to deform. [Means for solving the problem]
[0006] The optical element according to the present disclosure comprises an optical functional part made of resin having a cut surface formed on its outer periphery, and a translucent substrate that supports the optical functional part and has a higher Young's modulus than the optical functional part, wherein the connection between the cut surface of the optical functional part and the part of the outer periphery of the optical functional part other than the cut surface has a shape that includes at least one of an edge shape, a chamfered shape, and a rounded shape, and the distance from the center of the optical functional part to the cut surface is shorter than the distance from the center of the optical functional part to the part of the outer periphery of the optical functional part other than the cut surface.
[0007] The method for manufacturing an optical element according to the present disclosure is a method for manufacturing an optical element by forming an optical functional part made of resin, on a translucent substrate having a higher Young's modulus than the optical functional part, and the cut surface of the optical functional part and the part of the outer periphery of the optical functional part other than the cut surface are angular, and the cut surface is formed so that the distance from the center of the optical functional part to the cut surface is shorter than the distance from the center of the optical functional part to the part of the outer periphery of the optical functional part other than the cut surface. [Effects of the Invention]
[0008] According to the present invention, it is possible to provide an optical element that can be manufactured appropriately and is difficult to deform. [Brief explanation of the drawings]
[0009] [Figure 1A] FIG. 1A is a schematic diagram of an optical element according to this embodiment. [Figure 1B] FIG. 1B is a schematic diagram of the optical element according to this embodiment. [Figure 2] FIG. 2 is a schematic diagram of the optical element according to this embodiment. [Figure 3] FIG. 3 is a diagram showing an example of the relationship between the lens and the imaging element. [Figure 4] FIG. 4 is a schematic diagram illustrating a method for manufacturing an optical element according to this embodiment. [Figure 5] FIG. 5 is a schematic diagram showing another example of the optical element. [Figure 6]FIG. 6 is a schematic diagram showing another example of the optical element. [Figure 7] FIG. 7 is a schematic diagram showing another example of the optical element. [Figure 8] FIG. 8 is a schematic diagram showing another example of the optical element. [Figure 9] FIG. 9 is a schematic diagram of the models of Examples 1 and 2. [Figure 10] FIG. 10 is a graph showing the evaluation results. [Figure 11] FIG. 11 is a graph showing the evaluation results. [Figure 12] FIG. 12 is a graph showing the evaluation results. [Figure 13] FIG. 13 is a graph showing the evaluation results. DETAILED DESCRIPTION OF THE INVENTION
[0010] Preferred embodiments of the present invention will be described in detail below with reference to the accompanying drawings. Note that the present invention is not limited to these embodiments, and when there are multiple embodiments, the present invention also includes configurations that are made by combining the respective embodiments. Furthermore, numerical values include the range of rounding.
[0011] 1A, 1B, and 2 are schematic diagrams of an optical element according to this embodiment. As shown in FIG. 1A, the optical element 10 according to this embodiment includes a substrate 20 and a lens 30. The optical element 10 includes a support surface 22, which is the surface of the substrate 20, on which the lens 30 is provided. The lens 30 can be considered an optically functional part having an optical function. The surface of the lens 30 opposite the light-receiving surface 34 is fixed to the support surface 22 of the substrate 20. Note that FIG. 2 can also be considered a view of the optical element 10 viewed from the direction of the central axis AX of the lens 30. The central axis AX of the lens 30 can also be considered to be the optical axis of the lens 30. Hereinafter, the direction along the central axis AX, i.e., the direction along the optical axis of the lens 30, will be referred to as direction Z. Furthermore, a direction perpendicular to direction Z will be referred to as direction X, and a direction perpendicular to direction Z and direction X will be referred to as direction Y.
[0012] In this embodiment, the optical element 10 is mounted on an imaging device that captures an image. In this embodiment, the lens 30 is a convex lens that condenses light L. The light L may be visible light or infrared light. Visible light here refers to light with a wavelength of, for example, 400 nm or more and 800 nm or less. Infrared light refers to light with a wavelength of, for example, 0.8 μm or more and 1.2 μm or less. The light L incident on the convex light-receiving surface 34 of the lens 30 travels within the lens 30 while being condensed radially inward toward the central axis AX (optical axis side), enters the substrate 20 from the lens 30, passes through the substrate 20, and is emitted from the substrate 20. Note that the radial direction here refers to the radial direction when the central axis AX (optical axis) of the lens 30 is the center. The light L emitted from the substrate 20 is incident on an imaging element (not shown) mounted on the imaging device and captured as an image. It should be noted that another optical element may be provided between the optical element 10 (substrate 20) and the imaging element. Furthermore, another optical element may be provided closer to the incident direction of the light L than the optical element 10. Furthermore, the optical axis direction of the lens 30 and the traveling direction of the light L from the lens 30 to the imaging element may or may not coincide. That is, the elements from the lens 30 to the imaging element may be arranged coaxially, or the elements from the lens 30 to the imaging element may not be arranged coaxially, and the traveling direction of the light L emitted from the lens 30 may be changed by the elements so that the light L is incident on the imaging element. It should be noted that the use of the optical element 10 is not limited to being mounted in an imaging device. Furthermore, although the above description has been given of an example in which the light L is incident on the optical element 10 from the lens 30 side, the optical element 10 is not limited to a configuration in which the lens 30 is on the incident side. For example, the optical element 10 may be configured such that the substrate 20 is the incident side, and light L incident on the surface of the substrate 20 passes through the substrate 20 and the lens 30 and is emitted from the lens 30.
[0013] (base material) The substrate 20 is a light-transmitting member. "Light-transmitting" here refers to the ability to transmit light L. For example, when the optical element 10 is used for visible light applications, the substrate 20 preferably has an average transmittance of 80% or more, more preferably 85% or more, and even more preferably 90% or more for light with a wavelength of 400 nm to 800 nm. For example, when the optical element 10 is used for infrared light applications, the substrate 20 preferably has an average transmittance of 80% or more, more preferably 85% or more, and even more preferably 90% or more for light with a wavelength of 0.8 μm to 1.2 μm (substrate thickness: 0.5 mm, internal transmittance value) for light with a wavelength of 0.8 μm to 1.2 μm. A transmittance within this range ensures that the optical element 10 can function properly. The transmittance can be measured by measuring a spectral transmittance curve using, for example, a UV-visible spectrophotometer (U-4150 model, manufactured by Hitachi High-Technologies Corporation). The transmittance herein may refer to internal transmittance. The average transmittance is the average value of the transmittance for light of each wavelength in the wavelength band (here, 400 nm to 800 nm or 0.8 μm to 1.2 μm).
[0014] The substrate 20 is a member that supports the lens 30 on a support surface 22. In this embodiment, the substrate 20 is a plate-like member with the support surface 22 as one of its main surfaces. However, the shape of the substrate 20 is not limited to a plate shape and may be any shape. For example, the substrate 20 may be a triangular prism, a trapezoid, a triangular pyramid, or a plate-like shape with a curved surface.
[0015] In this embodiment, the support surface 22 of the substrate 20 is flat, but is not limited to being flat and may be curved. The support surface 22 preferably has a radius of curvature of 200 mm or more, more preferably 300 mm or more, and even more preferably 600 mm or more. When the radius of curvature is within this range, the surface is prevented from becoming too curved, allowing the optical element 10 to function properly. Furthermore, it is preferable that the substrate 20 does not have an aspherical surface (a curved surface that is not spherical).
[0016] As shown in FIG. 2, the support surface 22 of the substrate 20 has a rectangular shape when viewed from direction Z, i.e., when viewed from the optical axis direction of the lens 30. In the example of FIG. 2, the support surface 22 is rectangular, and hereinafter, the long side of the support surface 22 will be referred to as long side 22A and the short side will be referred to as short side 22B. However, the shape of the support surface 22 when viewed from direction Z is not limited to a rectangle or oblong, but may be any shape. For example, the shape of the support surface 22 when viewed from direction Z may be a square or any polygon. In such a square or polygonal shape, the long side 22A and the short side 22B can be referred to as "sides." Furthermore, for example, the shape of the support surface 22 when viewed from direction Z may be a circle or an ellipse. Note that the corners of the substrate 20 may have any shape. For example, the corners of the substrate 20 are not limited to being strictly edge-shaped, but may have a shape that includes at least one of an edge-shaped shape, a chamfered shape (a shape including a chamfered portion), and a rounded shape (a shape including a rounded portion). The corners of the substrate 20 may have an uneven shape or a complex curved shape. The corners of the substrate 20 refer to the corners of the substrate 20 when viewed from the Z direction and the corners on the side where the lens 30 is not provided when viewed from the normal direction to the Z direction. Note that the edge shape refers to a shape with a pointed tip without any rounding or chamfering, and may refer to, for example, a shape in which a point at the tip indicates a maximum value in the profile of the corner.
[0017] As shown in FIG. 2, the longest length of a straight line connecting two points on the outer periphery of the support surface 22 of the substrate 20 is defined as length LA1. In this case, length LA1 is preferably 0.5 mm or more and 20 mm or less, more preferably 1 mm or more and 10 mm or less, and even more preferably 1.5 mm or more and 8 mm or less. In this embodiment, since the support surface 22 is rectangular, length LA1 is the length of the diagonal of the support surface 22. By keeping length LA1 within this range, the lens 30 can be appropriately supported while also reducing the overall size of the optical element 10.
[0018] 1, the thickness DA of the substrate 20 is preferably 0.1 mm or more and 5 mm or less, more preferably 0.2 mm or more and 4 mm or less, and even more preferably 0.3 mm or more and 3 mm or less. Having the thickness DA within this range ensures rigidity and appropriately suppresses deformation of the lens 30. Note that the thickness DA here refers to the thickness of the substrate 20 at a position on the central axis AX of the lens 30, and can also be considered the thickness of the optical axis portion of the lens 30. In other words, the thickness DA can be considered to be the length along the Z direction from the support surface 22 of the substrate 20 to the surface opposite the support surface 22 at a position on the central axis AX.
[0019] The Young's modulus of the substrate 20 is preferably 10 GPa to 150 GPa, more preferably 30 GPa to 140 GPa, and even more preferably 50 GPa to 130 GPa. A Young's modulus within this range ensures rigidity and appropriately suppresses deformation of the lens 30. Young's modulus can be measured using tensile testing, ultrasonic pulse testing, nanoindentation, or other methods. The nanoindentation method is described, for example, in ISO 14577. When measuring the Young's modulus of the lens 30, substrate 20, and intermediate layer 40 (described below), they may be measured in a bonded or unbonded state. Furthermore, the measurement methods for the lens 30, substrate 20, and intermediate layer 40 (described below) may each be different. While the Young's modulus values may vary depending on the process each material undergoes, the Young's modulus may be measured by molding materials with similar chemical compositions, and the measured values may be used as the Young's modulus of each component. Methods other than those described above may also be used to measure the Young's modulus.
[0020] The material of the substrate 20 is arbitrary, and examples thereof include transparent glass substrates such as soda-lime glass such as blue plate, low-alkali borosilicate glass, borosilicate crown glass, crown glass, borosilicate glass, alkali-free glass, optical glass (e.g., barium glass, borosilicate glass, phosphosilicate glass, fluoride glass, lanthanum glass, etc.), chemically strengthened aluminosilicate glass, quartz glass (glass made of SiO), sapphire glass (glass made of AlO), calcium fluoride glass (glass made of CaF), etc. The material of the substrate 20 may also be resin.
[0021] In this embodiment, the substrate 20 emits light L incident from the lens 30 to the outside while maintaining the characteristics of the light L. However, the substrate 20 may have optical properties that change the characteristics of the light L incident from the lens 30. In this case, for example, the substrate 20 may be a diffractive optical element that diffracts the light L, a wave plate that changes the phase of the light L, a diffusion plate that diffuses the light L, or a refractive optical element (e.g., a prism) that refracts the light L to change the traveling direction of the light L. Furthermore, the substrate surface may be provided with a light-blocking function by covering an area corresponding to the outer periphery of the lens with a light-blocking member that does not transmit light.
[0022] (lens) The lens 30 receives light L from the light-receiving surface 34, focuses the light L radially inward toward the central axis AX (optical axis), and emits the light L from the opposite side of the light-receiving surface 34. For example, when the optical element 10 is used for visible light applications, the lens 30 preferably has an average transmittance (substrate thickness: 0.5 mm, internal transmittance value) of 80% or more for light with a wavelength of 400 nm or more and 800 nm or less, more preferably 85% or more, and even more preferably 90% or more. For example, when the optical element 10 is used for infrared light applications, the lens 30 preferably has an average transmittance of 80% or more for light with a wavelength of 0.8 μm or more and 1.2 μm or less, more preferably 85% or more, and even more preferably 90% or more. Having a transmittance within this range allows the optical element 10 to function properly. In this way, the lens 30 is a convex lens that focuses the light L onto the central axis AX, but is not limited to this and may be, for example, a concave lens that refracts the light L radially outward. Furthermore, the lens 30 is a spherical lens whose light-receiving surface 34 is spherical, but is not limited to this and may be an aspherical lens whose light-receiving surface 34 is aspherical.
[0023] The lens 30 has a cut surface 32A formed on its outer periphery 32. As shown in FIG. 2 , if the portion of the outer periphery 32 other than the cut surface 32A (first outer periphery) is defined as an outer periphery 32B (second outer periphery), a connection portion 32C, which is a connection portion between the cut surface 32A and the outer periphery 32B, is angular when viewed from the Z direction (the optical axis direction of the lens 30). The connection portion 32C can also be said to be a boundary portion between the cut surface 32A and the outer periphery 32B. In other words, when the lens 30 is viewed from the Z direction, the line segment along the cut surface 32A and the line segment along the outer periphery 32B are discontinuous, and the connection portion 32C, which is a boundary between the line segment along the cut surface 32A and the line segment along the outer periphery 32B, can be said to be an inflection point. Note that the angular shape of the connection portion 32C is not limited to a strict edge shape, but also includes a shape with a chamfer or a shape with a rounded edge. That is, the connecting portion 32C may have a shape including at least one of an edge, a chamfered shape (a shape including a chamfer), and a rounded shape (a shape including a rounded shape) when viewed from the Z direction. Also, as shown in FIG. 2, when viewed from the Z direction, the shortest distance A2 from the center of the lens 30 (a point on the central axis AX) to the cut surface 32A is shorter than the shortest distance A1 from the center of the lens 30 (a point on the central axis AX) to the outer periphery 32B. The shortest distance A2 is preferably 50% to 90%, more preferably 60% to 80%, and even more preferably 70% to 76% of the shortest distance A1. When the ratio of the shortest distance A1 to the shortest distance A2 is within this range, the optical element 10 can maintain its optical properties while reducing its size. The shortest distance A2 may refer to the shortest distance from the center of the lens 30 (a point on the central axis AX) to the end face on the cut surface 32A side when the lens 30 is projected in the Z direction.
[0024] Fig. 3 is a diagram showing an example of the relationship between a lens and an imaging element. Fig. 3 shows a case where a light receiving surface IS of an imaging element is projected onto the surface of lens 30 along the traveling direction of light L from lens 30 to the imaging element. As shown in Fig. 3, when the light receiving surface IS of the imaging element is projected onto the surface of lens 30 along the traveling direction of light L, lens 30 may have cut surface 32A formed so that the light receiving surface IS of the imaging element is contained within the area of lens 30, i.e., so that the light receiving surface IS does not protrude from the outer periphery 32 of lens 30. However, this is not limiting, and the light receiving surface IS of the imaging element may also protrude outside the area of lens 30.
[0025] 1A and 2, two cut surfaces 32A are formed, but the number of cut surfaces 32A is not limited to two and can be any number. Also, in the example of Figures 1A and 2, the two cut surfaces 32A are formed at positions facing each other across the center of the lens 30 when viewed from the Z direction, i.e., offset by 180 degrees in the circumferential direction, but the positions at which they are formed are not limited to this. The multiple cut surfaces 32A may be formed offset by any angle in the circumferential direction.
[0026] As shown in Fig. 2, when viewed from the Z direction, the lens 30 has a circular shape with the cut surface 32A missing. That is, the lens 30 has a circular shape with the cut surface 32A missing. However, the lens 30 is not limited to a circular shape with the cut surface 32A missing. For example, the lens 30 may have an elliptical shape with the cut surface 32A missing.
[0027] The cut surface 32A of the lens 30 is flat when viewed from the normal direction to the Z direction (the optical axis direction of the lens 30). The outer periphery 32B of the lens 30 is curved when viewed from the normal direction to the Z direction (the optical axis direction of the lens 30). Therefore, when the lens 30 is viewed from the Z direction, a line along the outer periphery 32B of the lens 30 is curved, and a line along the cut surface 32A is straight. However, the cut surface 32A is not limited to being flat and may be curved. The radius of curvature of the cut surface 32A is preferably 200 mm or more, more preferably 300 mm or more, and even more preferably 1000 mm or more. Having a radius of curvature within this range prevents the surface from becoming too curved, allowing the optical element 10 to function properly.
[0028] The arithmetic mean roughness Ra of the cut surface 32A of the lens 30, as specified in JIS B 0601:2001, is preferably 0.05 μm or less, more preferably 0.001 μm or more and 0.03 μm or less, and even more preferably 0.002 μm or more and 0.015 μm or less. When the arithmetic mean roughness Ra of the cut surface 32A is within this range, for example, diffuse reflection of light L inside and outside the lens 30 is suppressed, thereby maintaining appropriate optical characteristics of the optical element 10. In addition, the cut surface 32A of the lens 30 can be easily subjected to light-blocking treatments such as black painting.
[0029] As shown in FIG. 2, the longest length of a straight line connecting two points on the outer periphery 32 of the lens 30 is defined as length LB1. In this case, length LB1 is preferably 20 mm or less. Length LB1 can also be said to be the effective diameter of the lens 30. In this embodiment, length LB1 is the diameter of the lens 30 at the outer periphery 32B of the outer periphery 32. By keeping length LB1 within this range, the size of the optical element 10 can be reduced while maintaining its optical properties.
[0030] 1A, the thickness DB1 of the lens 30 is preferably 0.05 mm or more and 1.0 mm or less, more preferably 0.08 mm or more and 0.5 mm or less, and even more preferably 0.1 mm or more and 0.4 mm or less. Note that the thickness DB1 here is the thickness of the lens 30 at a position on the central axis AX of the lens 30. In other words, the thickness DB1 can be said to be the length along the Z direction from the light-receiving surface 34 of the lens 30 to the surface opposite the light-receiving surface 34 at a position on the central axis AX. By keeping the thickness DB1 within this range, the optical characteristics of the optical element 10 can be maintained while reducing the size thereof.
[0031] As shown in FIG. 1B, the thickness DB2 of the thinnest portion of lens 30 is preferably 80 μm or less, more preferably 5 μm to 50 μm, and even more preferably 10 μm to 30 μm. Having thickness DB2 within this range enables appropriate focusing of light L entering lens 30 from the vicinity of outer periphery 32. The thinnest portion is the portion of lens 30 where the thickness is smallest, and thickness DB2 can also be considered the minimum value of the thickness of each portion of lens 30. In the example of FIG. 1B, lens 30 is a convex lens, so the uncut outer periphery 32B is the thinnest portion. Furthermore, for example, if lens 30 were a concave lens, the portion on central axis AX (portion on the optical axis) would be the thinnest portion.
[0032] The lens 30 preferably has a Young's modulus of 1 GPa or more and 5 GPa or less, more preferably 1.2 GPa or more and 4.5 GPa or less, and even more preferably 1.5 GPa or more and 4 GPa or less.
[0033] The lens 30 is made of resin. Using resin for the lens 30 allows for easy manufacturing of the lens 30 having the cut surface 32A. Examples of resin materials used for the lens 30 include energy-curable resins. Examples of energy-curable resins include thermosetting resins that cure when heated, such as silicone resin, epoxy resin, and phenolic resin, and photocurable resins that cure when exposed to ultraviolet light, such as epoxy resin and acrylic resin. While other resin materials that can be used for the lens 30 include thermoplastic resins, energy-curable resins are preferred in terms of heat resistance. Energy-curable resins are characterized by their fluidity before curing, and many have a viscosity similar to that of a liquid. One known method for manufacturing optical elements using such energy-curable resins involves using a mold having a lens-molding surface that is the inverse of a predetermined lens surface shape, transferring the shape of the mold's lens-molding surface to resin supplied to the surface of a substrate, and then curing the resin by energy irradiation (e.g., by irradiating it with light or applying heat).
[0034] (Relationship between lens and substrate) The surface of the lens 30 opposite the light-receiving surface 34 is fixed to the support surface 22 of the substrate 20. As shown in FIG. 2, the lens 30 is preferably arranged on the support surface 22 so that it fits within the area of the support surface 22 of the substrate 20 when viewed from the Z direction. That is, the lens 30 does not extend radially outward from the support surface 22 when viewed from the Z direction. In the example of FIG. 2, the lens 30 is arranged on the support surface 22 so that the cut surface 32A is aligned with the long side 22A of the support surface 22. Meanwhile, the outer periphery 32B of the lens 30 is located radially inward of the short side 22B of the support surface 22. The positional relationship between the lens 30 and the support surface 22 of the substrate 20 as described above allows the lens 30 to be appropriately supported by the substrate 20, thereby suppressing deformation of the lens 30. However, the positional relationship between the lens 30 and the support surface 22 of the substrate 20 is not limited to the above and may be arbitrary.
[0035] 2, the length LA1 of the support surface 22 is preferably equal to or greater than the length LB1 of the lens 30, and more preferably is greater than the length LB1. The length LA1 is preferably equal to or greater than 100% and equal to or less than 160% of the length LB1, and may be equal to or greater than 105% and equal to or less than 140%, or may be equal to or greater than 110% and equal to or less than 120%. When the ratio of the lengths LA1 and LB1 is within this range, the size of the optical element 10 can be reduced while maintaining a large effective diameter of the lens 30, and deformation of the lens 30 can be suppressed by the substrate 20.
[0036] The length of the short side 22B of the support surface 22 is defined as length LA2. In this case, it is preferable that the length LB1 of the lens 30 is longer than the length LA2 of the support surface 22. The length LB1 is preferably 100% or more and 230% or less of the length LA2, and may be 110% or more and 220% or less, or may be 120% or more and 210% or less. When the ratio of the length LA2 to the length LB1 is within this range, the effective diameter of the lens 30 can be kept large while the size of the optical element 10 is reduced, and deformation of the lens 30 can be suppressed by the substrate 20. Furthermore, when the ratio of the length LA2 to the length LB1 is within this range, blocking of light rays necessary for the optical system can be appropriately suppressed, thereby suppressing performance degradation.
[0037] The length of the long side 22A of the support surface 22 is defined as length LA3. In this case, it is preferable that the length LB1 of the lens 30 is equal to or less than the length LA3 of the support surface 22. It is preferable that the length LB1 is equal to or greater than 80% and equal to or less than 160% of the length LA3, more preferably equal to or greater than 85% and equal to or less than 145%, and even more preferably equal to or greater than 90% and equal to or less than 125%. When the ratio of the lengths LA3 and LB1 is within this range, the effective diameter of the lens 30 can be kept large while reducing the size of the optical element 10, and deformation of the lens 30 can be suppressed by the substrate 20. Furthermore, when the ratio of the lengths LA3 and LB1 is within this range, blocking of light rays necessary for the optical system can be appropriately suppressed, thereby suppressing performance degradation.
[0038] Furthermore, the length LB2 of the lens 30 is preferably equal to or less than the length LA2 of the support surface 22. The length LB2 is preferably equal to or greater than 80% and equal to or less than 100%, more preferably equal to or greater than 90% and equal to or less than 100%, and even more preferably equal to or greater than 95% and equal to or less than 100% of the length LA2. When the ratio of the lengths LA2 and LB2 is within this range, the size of the optical element 10 can be reduced while maintaining a large effective diameter of the lens 30, and deformation of the lens 30 can be suppressed by the substrate 20. The length LB2 can also be said to be the length from a point on the cut surface 32A, passing through the center of the lens 30 (a point on the central axis AX), to a point on the opposite side of the outer periphery 32. In this embodiment, the length LB2 is the length from a point on the cut surface 32A, passing through the center of the lens 30 (a point on the central axis AX), to a point on the opposite cut surface 32A.
[0039] 1A, the thickness DA of the substrate 20 is preferably 40% to 1000% of the thickness DB1 of the lens 30, and more preferably 45% to 850%. When the ratio of the thickness DA of the substrate 20 to the thickness DB1 of the lens 30 is within this range, the substrate 20 can suppress deformation of the lens 30.
[0040] The Young's modulus of the substrate 20 is higher than that of the lens 30. The Young's modulus of the substrate 20 is preferably 10 to 100 times, more preferably 13 to 90 times, and even more preferably 15 to 80 times, that of the lens 30. When the Young's modulus of the substrate 20 is higher than that of the lens 30, the substrate 20 can appropriately suppress deformation of the lens 30.
[0041] The refractive index of lens 30 for light with a wavelength of 587.6 nm is preferably 70% to 120%, more preferably 75% to 115%, and even more preferably 80% to 110%, of the refractive index of light with a wavelength of 587.6 nm for substrate 20. By keeping the refractive index ratio within this range, optical properties can be maintained.
[0042] (Overall optical element characteristics) The optical element 10 preferably has a retardation value (phase difference) of 50 nm or less, more preferably 30 nm or less. By achieving a retardation value within this range, the optical element 10 can suppress phase shift and reduce degradation of optical performance. The retardation value can be measured using a WPA-200-L manufactured by Photonic Lattice. Lenses with cut surfaces on their periphery lack rigidity and are prone to deformation when subjected to external forces. This deformation can generate internal stress and increase the degree of birefringence. In contrast, the optical element 10 according to this embodiment supports the lens 30 with the substrate 20, ensuring rigidity and reducing birefringence. Furthermore, molding methods such as injection molding are prone to birefringence due to the orientation of long molecules in the resin at the periphery of the lens. Therefore, when molding a lens with a periphery cut shape using these molding methods, a process of cutting off unnecessary portions is required to use the portions of the lens with low retardation, or it is difficult to manufacture a small element because portions with high retardation values must be removed in advance. In contrast to this, by using, for example, an energy curable resin as in the example of this embodiment, it is possible to form an optical element with small retardation while eliminating the need for a cutting process or the like.
[0043] Furthermore, the difference between the maximum and minimum retardation values in the optical element 10 is preferably 30 nm or less, and more preferably 20 nm or less. By keeping the difference within this range, the deviation in retardation across the entire area of the optical element 10 can be reduced, thereby suppressing degradation of optical performance. Note that the maximum retardation value in the optical element 10 refers to the maximum value among the retardation values for each position on the surface of the optical element 10 as viewed from the Z direction. Similarly, the minimum retardation value in the optical element 10 refers to the minimum value among the retardation values for each position on the surface of the optical element 10 as viewed from the Z direction.
[0044] (Manufacturing method) Next, a method for manufacturing the optical element 10 having the above configuration will be described. In this manufacturing method, the optical element 10 is manufactured by forming a resin lens 30, having a cut surface 32A formed on the outer periphery 32, on a light-transmitting substrate 20 having a Young's modulus higher than that of the lens 30. FIG. 4 is a schematic diagram illustrating a method for manufacturing an optical element according to this embodiment. As shown in FIG. 4, in this manufacturing method, in step S10, the support surface 22 of the substrate 20 is covered with a mold M1, and uncured resin 30X is filled into the mold M1. The resin 30X is a resin that will become the lens 30 upon curing, and in this embodiment, it is cured by irradiation with electromagnetic waves La. In this embodiment, the electromagnetic waves La are ultraviolet rays, but are not limited to ultraviolet rays as long as they are electromagnetic waves that can cure the resin 30X. Furthermore, the shape of the mold M1 is arbitrary, but in this embodiment, the internal space is shaped to correspond to a circular lens.
[0045] In this manufacturing method, a part of the mold M1 is covered with a shielding member M2. The shielding member M2 is a member that blocks electromagnetic waves La. The shielding member M2 covers a part of the internal space of the mold M1 that is to be cut out from the circular lens as the cut surface 32A.
[0046] Thereafter, as shown in step S10, electromagnetic waves La are irradiated toward the mold M1. The resin 30X in the mold M1 is cured by being irradiated with the electromagnetic waves La. However, the resin 30X in the mold M1 in the portion covered by the shielding member M2 remains uncured. In other words, only the portion of the resin 30X that constitutes the lens 30, where the cut surface 32A is missing, is cured.
[0047] Thereafter, the mold M1 is removed and the uncured resin 30X is removed using a solvent or the like, and as shown in step S12, the lens 30 having the cut surface 32A formed thereon is formed on the substrate 20, thereby completing the production of the optical element 10.
[0048] In this manner, in this manufacturing method, the portion to be cut out as the cut surface 32A is covered with the shielding member M2, and the resin 30X is irradiated with electromagnetic waves La, thereby forming the lens 30 on the substrate 20. This makes it possible to reduce the thickness DB2 of the outer periphery 32 of the lens 30 while smoothing the surface roughness of the cut surface 32A. However, the manufacturing method of the optical element 10 is not limited to this, and any method is possible. For example, the lens 30 on which the cut surface 32A is formed may be manufactured first, and then the lens 30 may be bonded onto the substrate 20. Alternatively, for example, the lens 30 on which the cut surface 32A is formed may be manufactured by machining the portion of a circular lens on which the cut surface 32A is to be cut out, or the lens 30 on which the cut surface 32A is formed may be manufactured by injection molding.
[0049] (Other examples) Other examples of this embodiment will be described below. In the above description, the number of cut surfaces 32A of the lens 30 was two, but the number of cut surfaces 32A may be any number. Figures 5 to 7 are schematic diagrams showing other examples of optical elements.
[0050] For example, as shown in FIG. 5, the number of cut surfaces 32A may be four. In this case, it is preferable that the length LB1 of the lens 30 be greater than the length LA3 of the long side 22A of the support surface 22. In this case, the length LB1 is preferably 100% to 160% of the length LA3, more preferably 105% to 150%, and even more preferably 110% to 145%. When the ratio of the length LA3 to the length LB1 is within this range, the effective diameter of the lens 30 can be kept large while the size of the optical element 10 is reduced, and deformation of the lens 30 can be suppressed by the substrate 20.
[0051] For example, the number of cut surfaces 32A may be three as shown in Fig. 6, or one as shown in Fig. 7. The number of cut surfaces 32A may also be five or more. Regardless of the number of cut surfaces 32A, it is preferable that the ratio of the length LA1 of the substrate 20 to the length LB1 of the lens 30 be 100% or more.
[0052] (middle class) Fig. 8 is a schematic diagram showing another example of an optical element. In the above description, the lens 30 is directly supported on the support surface 22 of the substrate 20, and the substrate 20 and the lens 30 are in contact with each other, but this is not limiting. For example, as shown in Fig. 8, an intermediate layer 40 may be provided between the substrate 20 and the lens 30.
[0053] The intermediate layer 40 is a layer that bonds the substrate 20 and the lens 30. The intermediate layer 40 is preferably formed over the entire support surface 22 of the substrate 20.
[0054] The Young's modulus of the intermediate layer 40 is preferably lower than that of the lens 30. The Young's modulus of the intermediate layer 40 is preferably 0.1% or less, more preferably 0.01% or less, and even more preferably 0.001% or less, of that of the lens 30. When the Young's modulus of the intermediate layer 40 is lower than that of the lens 30, the intermediate layer 40 can absorb the load and suitably suppress deformation of the lens 30. Note that the intermediate layer 40 preferably satisfies at least one of the following: a glass transition point of 85°C or less; and a Young's modulus of less than 100 MPa.
[0055] The material of the intermediate layer 40 is arbitrary, but examples thereof include adhesive and OCA (Optical Clear Adhesive) double-sided tape.
[0056] (effect) As described above, the optical element 10 according to this embodiment includes a resin lens 30 having a cut surface 32A formed on its outer periphery 32, and a light-transmitting substrate 20 that supports the lens 30 and has a higher Young's modulus than the lens 30. A connection 32C between the cut surface 32A of the lens 30 and the outer periphery 32B (the portion of the outer periphery 32 other than the cut surface 32A) is angular when viewed in the Z direction (the optical axis direction of the lens 30), and the shortest distance A2 from the center of the lens 30 to the cut surface 32A is shorter than the shortest distance A1 from the center of the lens 30 to the outer periphery 32B.
[0057] Here, resin lenses with their peripheries cut are preferable because they are smaller in size, but the load acting on them becomes uneven, resulting in lower rigidity compared to, for example, circular lenses, and a higher likelihood of deformation. Lens deformation can affect optical properties. To reduce the possibility of deformation, it is conceivable to use lenses made of, for example, glass, but this increases the workload required to cut the peripheries. In contrast, the optical element 10 according to this embodiment supports a resin lens 30 with a cut periphery made of resin on a substrate 20 with a higher Young's modulus than the lens 30. Therefore, by using resin, cut lenses can be easily manufactured, while supporting the lens 30 on the substrate 20 can reduce deformation of the lens 30.
[0058] It is preferable that lens 30 has a circular shape with cut surface 32A missing when viewed from the Z direction (the optical axis direction of lens 30). By using lens 30 with a circular shape with cut surface 32A missing, optical element 10 according to this embodiment can be made smaller in size while maintaining its optical properties.
[0059] It is preferable that the cut surface 32A of the lens 30 is planar when viewed from the normal direction to the Z direction (the optical axis direction of the lens 30). Since the cut surface 32A of the optical element 10 according to this embodiment is planar, it is possible to reduce the size while maintaining the optical properties.
[0060] The lens 30 preferably has an arithmetic mean roughness Ra of 0.05 μm or less on the cut surface 32A as specified in JIS B 0601:2001. With such smooth cut surface 32A, the optical element 10 according to this embodiment can maintain appropriate optical properties.
[0061] It is preferable that the thickness DB2 of the thinnest portion of the lens 30 is 50 μm or less. When the edge thickness DB2 is in this range, the optical element 10 according to this embodiment can maintain appropriate optical characteristics.
[0062] When viewed from the Z direction (the optical axis direction of the lens 30), the lens 30 is contained within the area of the support surface 22 that supports the lens 30 of the substrate 20. In the optical element 10 according to this embodiment, the lens 30 is disposed within the area of the support surface 22, so that deformation of the lens 30 can be suitably suppressed.
[0063] It is preferable that the longest length LA1 of the straight lines connecting two points on the outer peripheral edge of the support surface 22 of the substrate 20 is longer than the longest length LB1 of the straight lines connecting two points on the outer peripheral edge of the lens 30. In the optical element 10 according to this embodiment, the length LA1 is longer than the length LB1, so that the substrate 20 can appropriately support the lens 30 and suitably suppress deformation of the lens 30.
[0064] Support surface 22 of substrate 20 is rectangular, and it is preferable that the longest length LB1 of a line connecting two points on the outer periphery of lens 30 is longer than the length LA2 of a side of support surface 22 of substrate 20. In optical element 10 according to this embodiment, length LB1 is longer than length LA2, which prevents lens 30 from becoming too small and allows optical properties to be maintained appropriately.
[0065] The Young's modulus of the substrate 20 is preferably 10 to 100 times that of the lens 30. By setting the Young's modulus ratio within this range, the optical element 10 according to this embodiment can suitably suppress deformation of the lens 30 by the substrate 20.
[0066] The thickness DA1 of the substrate 20 is preferably 0.1 mm or more and 5.0 mm or less relative to the thickness DB1 of the lens 30. By setting the thickness in this range, the optical element 10 according to this embodiment can suitably suppress deformation of the lens 30 by the substrate 20.
[0067] The refractive index of the lens 30 for light with a wavelength of 587.6 nm is preferably 70% or more and 120% or less of the refractive index of the substrate 20 for light with a wavelength of 587.6 nm. By setting the refractive index ratio within this range, the optical element 10 according to this embodiment can maintain appropriate optical characteristics.
[0068] The support surface 22 of the substrate 20 that supports the lens 30 is preferably rectangular when viewed in the Z direction (the optical axis direction of the lens 30). By making the support surface 22 rectangular, the optical element 10 according to this embodiment can appropriately support the lens 30 on the substrate 20 and suitably suppress deformation of the lens 30.
[0069] The support surface 22 of the substrate 20 that supports the lens 30 is preferably flat. By making the support surface 22 flat, the optical element 10 according to this embodiment can appropriately support the lens 30 on the substrate 20 and suitably suppress deformation of the lens 30.
[0070] The support surface 22 of the substrate 20 that supports the lens 30 may be curved. By making the support surface 22 curved, the optical element 10 according to this embodiment is endowed with optical properties appropriate for the application.
[0071] The substrate 20 preferably has optical properties that change the properties of the incident light L. Since the substrate 20 has optical properties that change the properties of the light L, the optical element 10 according to this embodiment is endowed with optical properties appropriate for the application.
[0072] The optical element 10 preferably has a retardation value of 50 nm or less. A retardation value in this range can suppress phase shift and reduce degradation of optical performance.
[0073] The difference between the maximum and minimum retardation values of the optical element 10 is preferably 30 nm or less. By keeping the difference in retardation values within this range, the deviation in retardation can be reduced, and degradation of optical performance can be suppressed.
[0074] In the optical element 10, an intermediate layer 40 that bonds the lens 30 to the substrate 20 is preferably provided between the lens 30 and the substrate 20. In the optical element 10 according to this embodiment, the intermediate layer 40 is provided, thereby allowing the lens 30 and the substrate 20 to be appropriately bonded to each other.
[0075] The Young's modulus of the intermediate layer 40 is preferably smaller than that of the lens 30. In the optical element 10 according to this embodiment, the Young's modulus of the intermediate layer 40 is lower than that of the lens 30, so that the load can be absorbed by the intermediate layer 40 and deformation of the lens 30 can be suitably suppressed.
[0076] In the manufacturing method according to this embodiment, an optical element 10 is manufactured by forming a resin lens 30, on which a cut surface 32A is formed on an outer periphery 32, on a light-transmitting substrate 20 having a higher Young's modulus than that of the lens 30. In this manufacturing method, the connection between the cut surface 32A of the lens 30 and the outer periphery 32B (the portion of the outer periphery 32 of the lens 30 other than the cut surface 32A) is angular when viewed in the Z direction (the optical axis direction of the lens 30), and the cut surface 32A is formed so that the distance from the center of the lens 30 to the cut surface 32A is shorter than the distance from the center of the lens 30 to the outer periphery 32B. This manufacturing method makes it possible to appropriately manufacture the optical element 10 while suppressing deformation of the lens 30.
[0077] (Example) Next, examples will be described. In the examples, the deformation amount when a load is applied to the lens was evaluated by simulation. Solidworks Simulation by Dassault Systemes SolidWorks Corporation was used as the simulation software.
[0078] (Example 1) Fig. 9 is a schematic diagram of models of Examples 1 and 2. For Example 1, a model was prepared in which a substrate was attached to the bottom surface of a convex lens having a cut surface. M1 in Fig. 9 is an example of the lens model of Example 1, and M2 in Fig. 9 is an example of the substrate model of Example 1. In Example 1, the lens height (thickness at the thickest part) was 0.35 mm, the lens diameter was 6 mm, the shortest distance from the center of the lens to the cut surface (corresponding to the shortest distance A2 in this embodiment) was 2 mm, and the lens curvature was R13 mm. The lens Young's modulus was set to two conditions: 2.1 GPa and 3.0 GPa. The substrate had the same shape as the lens when viewed from above. The substrate thickness was varied in 12 conditions: 0.1 mm, 0.12 mm, 0.14 mm, 0.16 mm, 0.18 mm, 0.2 mm, 0.25 mm, 0.3 mm, 0.5 mm, 0.75 mm, 1 mm, and 3.5 mm. The Young's modulus of the substrate was varied in six conditions: 30 GPa, 50 GPa, 70 GPa, 100 GPa, 210 GPa, and 300 GPa.
[0079] (Example 2) As Example 2, a model was prepared in which a convex lens having a cut surface had no substrate on its bottom surface. M1a in Figure 9 shows an example of the lens model of Example 2. In Example 2, a model was prepared in which the bottom side of the lens of Example 1 was extended by 0.5 mm. In other words, the model of Example 2 can be said to be the same as the lens of Example 1 in which a member with a thickness of 0.5 mm is attached to the bottom side of the lens.
[0080] (Evaluation content) For the evaluation, a prepared model was simulated by applying pressure to the side surfaces of the lens other than the cut surface (corresponding to the outer peripheral portion 32B in this embodiment) so that the total force was 1 N, and the displacement in the Z direction (optical axis direction of the lens) was calculated.
[0081] (Evaluation results) 10 to 13 are graphs showing the evaluation results. Fig. 10 is a graph plotting the amount of deformation for each thickness of the substrate when the Young's modulus of the lens is 2.1 GPa and the Young's modulus of the substrate is 70 GPa. The horizontal axis of Fig. 10 indicates the relative thickness of the substrate to the lens thickness, and the vertical axis of Fig. 10 indicates the relative displacement in the Z direction of the model of Example 1 to the displacement in the Z direction of the model of Example 2. In other words, a value of 1 on the vertical axis means that the amount of deformation is the same as that of the model of Example 2. Plot P1 in Fig. 10 shows the results of Example 1, which is an embodiment, and plot P2 shows the results of Example 2, which is a comparative example. Fig. 11 is a graph plotting the amount of deformation for each thickness of the substrate when the Young's modulus of the lens is 3.0 GPa. 10 and 11, it can be seen that providing a substrate reduces the amount of displacement in the Z direction and suppresses lens deformation. It can also be seen that making the thickness of the substrate 40% or more of the lens thickness reduces the amount of lens displacement to 10% or less compared to Example 2, which is preferable, and making the thickness of the substrate 80% or more of the lens thickness reduces the amount of lens displacement to about 1% compared to Example 2, which is even more preferable.
[0082] Fig. 12 is a graph plotting the amount of deformation for each Young's modulus of the substrate when the Young's modulus of the lens is 2.1 GPa and the thickness of the substrate is 29% and 141% of the lens thickness. The horizontal axis of Fig. 12 indicates the relative Young's modulus of the substrate with respect to the Young's modulus of the lens, and the vertical axis of Fig. 12 indicates the relative displacement in the Z direction of the model of Example 1 with respect to the displacement in the Z direction of the model of Example 2. Plot P1a in Fig. 12 shows the results of Example 1 when the substrate thickness is 29%, and plot P1b shows the results of Example 1 when the substrate thickness is 141%. Fig. 13 is a graph plotting the amount of deformation for each Young's modulus of the substrate when the Young's modulus of the lens is 3.0 GPa. 12 and 13, it can be seen that by providing a substrate with a higher Young's modulus than the lens, the displacement in the Z direction is reduced and deformation of the lens can be suppressed. Furthermore, by making the Young's modulus of the substrate 10 times or more that of the lens, even if the relative thickness of the substrate is as thin as 29%, the amount of deformation can be suppressed to the same level as in Example 2, which is preferable.
[0083] Although the embodiments of the present invention have been described above, the embodiments are not limited to the contents of these embodiments. Furthermore, the above-described components include those that can be easily imagined by a person skilled in the art, those that are substantially the same, and those that are within the scope of what is called equivalents. Furthermore, the above-described components can be combined as appropriate. Furthermore, various omissions, substitutions, or modifications of the components can be made without departing from the spirit of the above-described embodiments. [Explanation of symbols]
[0084] 10 Optical Elements 20 Base material 22 Support surface 30 lenses 32 Outer circumference 32A Cut surface 32B outer periphery 32C connection
Claims
1. an optical function part made of resin with a cut surface formed on the outer periphery; a translucent base material that supports the optical function portion and has a Young's modulus greater than that of the optical function portion; and the substrate is a refractive optical element, a connecting portion between the cut surface of the optical function portion and a portion of the outer periphery of the optical function portion other than the cut surface has a shape including at least one of an edge shape, a chamfered shape, and a rounded shape when viewed from the optical axis direction of the optical function portion, and the shortest distance from the center of the optical function portion to the cut surface is shorter than the shortest distance from the center of the optical function portion to the portion of the outer periphery of the optical function portion other than the cut surface; Optical elements.
2. an optical function part made of resin with a cut surface formed on the outer periphery; a translucent base material that supports the optical function portion and has a Young's modulus greater than that of the optical function portion; and an intermediate layer between the optical function part and the base material; a connecting portion between the cut surface of the optical function portion and a portion of the outer periphery of the optical function portion other than the cut surface has a shape including at least one of an edge shape, a chamfered shape, and a rounded shape when viewed from the optical axis direction of the optical function portion, and the shortest distance from the center of the optical function portion to the cut surface is shorter than the shortest distance from the center of the optical function portion to the portion of the outer periphery of the optical function portion other than the cut surface; Optical elements.
3. 3. The optical element according to claim 1, wherein the optical function portion has a circular shape in which the cut surface is missing when viewed in the optical axis direction of the optical function portion.
4. 3. The optical element according to claim 1, wherein the cut surface is planar when viewed from a direction normal to the optical axis direction of the optical function portion.
5. 3. The optical element according to claim 1, wherein the optical function portion is contained within a region of a support surface of the base material that supports the optical function portion when viewed in the optical axis direction of the optical function portion.
6. The optical element according to claim 5, wherein the longest length of a straight line connecting two points on the outer peripheral edge of the support surface of the substrate is longer than the longest length of a straight line connecting two points on the outer peripheral edge of the optical function portion.
7. 3. The optical element according to claim 1, wherein the Young's modulus of the substrate is 10 times or more and 100 times or less than the Young's modulus of the optical function portion.
8. 3. The optical element according to claim 1, wherein the thickness of the substrate is 0.1 mm or more and 5.0 mm or less.
9. 3. The optical element according to claim 1, wherein a support surface of the base material that supports the optical function portion has a rectangular shape when viewed in the optical axis direction of the optical function portion.
10. 3. The optical element according to claim 1, wherein a support surface of the base material that supports the optical function portion is flat.
11. 3. The optical element according to claim 1, wherein the substrate has an optical property that changes the properties of incident light.
12. 3. The optical element according to claim 1, wherein the optical function portion is a resin lens, and the substrate is a transparent glass substrate.
13. 3. The optical element according to claim 1, wherein the retardation value is 50 nm or less.
14. 3. The optical element according to claim 1, wherein the difference between the maximum and minimum retardation values is 30 nm or less.
15. 3. An optical element as described in claim 1 or claim 2, wherein, when viewed from the optical axis direction, the cut surface of the optical functional part is along the edge of the support surface of the base material that supports the optical functional part, and the part of the outer periphery of the optical functional part other than the cut surface is located radially inward from the edge of the support surface of the base material.
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