Optical element, and method for producing same
10386552 ยท 2019-08-20
Assignee
Inventors
Cpc classification
G02B5/1861
PHYSICS
B29C2043/3615
PERFORMING OPERATIONS; TRANSPORTING
B29C39/10
PERFORMING OPERATIONS; TRANSPORTING
G02B5/1852
PHYSICS
G02B5/1819
PHYSICS
B29C43/021
PERFORMING OPERATIONS; TRANSPORTING
B29C43/54
PERFORMING OPERATIONS; TRANSPORTING
B29C43/361
PERFORMING OPERATIONS; TRANSPORTING
G02B5/1814
PHYSICS
B29D11/0074
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C43/02
PERFORMING OPERATIONS; TRANSPORTING
B29C39/10
PERFORMING OPERATIONS; TRANSPORTING
B29C43/36
PERFORMING OPERATIONS; TRANSPORTING
B29D11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An optical element includes a base having a curved depression formed in a front surface thereof and a formed layer arranged on the base. The formed layer includes a main part in the depression as viewed from a depth direction of the depression and an overhang on the front surface of the base while connecting to the main part. An opposite surface of the main part to a surface thereof on a side of an inner surface of the depression is formed like a concave curve that is concave in a same direction as the inner surface of the depression. A predetermined surface of the main part that is opposed to the inner surface of the depression is provided with an optical function part.
Claims
1. An optical element comprising: a base having a depressed surface, the depressed surface having a periphery and a depth; a formed layer provided on the depressed surface of the base and having a depressed surface, the formed layer including an area in which a grating groove is formed and an area in which the grating groove is not formed, the area in which the grating groove is not formed surrounding the area in which the grating groove is formed; and a reflective film provided on the depressed surface of the formed layer, the formed layer comprises a different material than the reflective film, at least part of the surface of the reflective film formed on the area of the formed layer in which the grating groove is formed is positioned in a position deeper than the periphery of the depressed surface of the base, and the base comprises a material that is different from that of the formed layer, wherein, in the area of the formed layer in which the grating groove is formed, the thickness from a bottom portion of the depressed surface of the base to a bottom portion of the base is greater than the depth of the depressed surface of the base.
2. The optical element according to claim 1, wherein the grating groove extends in a direction crossing the area of the formed layer in which the grating groove is formed.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DESCRIPTION OF EMBODIMENTS
(11) An embodiment of the present invention will be described in details below with reference to the drawings. It is noted that in the drawings the same or corresponding parts are denoted with the same reference signs and an overlapping description will be omitted.
(12) As shown in
(13) On the base 2, a formed layer 4 is arranged which is formed by photocuring an optical resin for replicas, such as photocurable epoxy resins, acrylic resins, fluorocarbon resins, silicone, or organic-inorganic hybrid resins. The formed layer 4 has a circular shape as viewed from the depth direction (that is, one side) of the depression 3. The material of the formed layer 4 is not limited to photocurable resins as described above and a variety of materials (forming materials) capable of forming with a forming mold 30 described later and curing can be applied, such as thermosetting resin materials, low-melting glass, or organic-inorganic hybrid glass.
(14) The formed layer 4 includes a main part (first portion) 5 and an overhang (second portion) 6 that are integrally formed. The main part 5 is in the depression 3 as viewed from the depth direction of the depression 3 and covers the inner surface 3b of the depression 3 as a whole. The overhang 6 is on the front surface 2a of the base 2, being connected to the main part 5, and is provided outside of an annular opening 3a. That is, the overhang 6 is provided so as to surround the depression 3. The thickness of the overhang 6 in the depth direction of the depression 3 is greater than the thickness of the main part 5 in the depth direction of the depression 3.
(15) In the formed layer 4, a curved surface 4c formed like a concave curve is provided at a part of a surface 4b (a predetermined surface) (hereinafter referred to as the front surface of the formed layer 4) on the side opposite to the side of the base 2 that corresponds to the main part 5. The curved surface 4c is concave in the same direction as the inner surface 3b of the depression 3. That is, that part of the formed layer 4 which corresponds to the main part 5 is arranged along the inner surface 3b of the depression 3 of the base 2. In the present embodiment, the curvature of the curved surface 4c of the main part 5 is formed to be equal to the curvature of the inner surface 3b of the depression 3.
(16) In a predetermined area of the curved surface 4c on the main part 5, a grating pattern is formed which corresponds to a brazed grating having a serrated cross section, a binary grating having a rectangular cross section, a holographic grating having a sinusoidal cross section, or other gratings.
(17) On the front surface 4b of the formed layer 4, a reflective film 7 that is a deposited film of Al, Au, or other substances is formed. The reflective film 7 is formed so as to correspond to the grating pattern in the predetermined area of the front surface 4b on the main part 5, and this part serves as the optical function part 10 that is a reflective grating. The material of the reflective film 7 is not limited to the materials described above and a variety of materials can be applied. A protective film or an antireflection film of SiO2, SiN, MgF2, or other substances may be formed on the reflective film 7 by deposition, sputtering, CVD, or other processes. A bonding layer of Cr, Ni, NiCr, Ti, TiN, or other substances may be formed between the formed layer 4 and the reflective film 7 by deposition, sputtering, CVD, or other processes.
(18) As described above, in the optical element 1, the curved surface 4c, which is the part of the front surface 4b of the formed layer 4 that corresponds to the main part 5, is formed like a concave curve that is concave in the same direction as the inner surface 3b of the depression 3 of the base 2, so that the change in thickness of the formed layer 4 in the main part 5 is gradual. In the present embodiment, in particular, the curvature of the curved surface 4c of the main part 5 is formed to be equal to the curvature of the inner surface 3b of the depression 3, so that the thickness of the formed layer 4 in the main part 5 can be reduced (for example, 1 m to 100 m). This configuration can reduce the effect of shrinkage caused, for example, when the formed layer is cured with UV radiation or heat. In addition, even when stress caused by temperature changes during use or other reasons concentrates on the depression 3 of the base 2, the overhang 6 on the front surface 2a of the base 2 and connected to the main part 5 presses the main part 5 in the depression 3 of the base 2. This effect is attributable to that the front surface 2a with the overhang 6 thereon is a surface discontinuous from the inner surface 3b of the depression 3 (in the optical element 1, the curved, inner surface 3b of the depression 3 is connected with the planar, front surface 2a). In addition, since the overhang 6 is provided so as to surround the depression 3, the main part 5 is pressed uniformly from the periphery. Separation of the formed layer 4 from the base 2 is thereby reliably prevented.
(19) Moreover, shrinkage or expansion of the formed layer 4 resulting from temperature changes during use or other reasons is absorbed by the overhang 6 on the front surface 2a of the base 2, so that shrinkage or expansion of the main part 5 in the depression 3 of the base 2 is alleviated. In addition, since the overhang 6 is provided so as to surround the depression 3, shrinkage or expansion of the main part 5 is uniformly alleviated. The thickness of the overhang 6 is formed to be greater than the thickness of the main part 5. Consequently, deformation of the curved surface 4c of the main part 5 is reliably prevented and deformation of the optical function part 10 provided at the curved surface 4c is reliably prevented accordingly. In the optical element 1, therefore, separation of the formed layer 4 and deformation of the optical function part 10 can be reliably prevented with a simple construction.
(20) Next, a method of producing the optical element 1 described above will be described. First, as shown in
(21) Subsequently, as shown in
(22) The forming mold 30 is provided with a forming surface 30a for forming the curved surface 4c to be provided with the optical function part 10 in the front surface 4b of the formed layer 4. Here, the forming surface 30a is a convex curved surface complementary to the curved surface 4c.
(23) Subsequently, as shown in
(24) As described above, in the method of producing the optical element 1, the curved surface 4c, which is the part of the front surface 4b of the formed layer 4 that corresponds to the main part 5, is formed like a concave curve that is concave in the same direction as the inner surface 3b of the depression 3 of the base 2, so that the change in thickness of the formed layer 4 in the main part 5 is gradual. In particular, when the curvature of the curved surface 4c of the main part 5 is set equal to the curvature of the inner surface 3b of the depression 3, the thickness of the formed layer 4 in the main part 5 can be constant. This configuration can reduce the effect of shrinkage caused, for example, when the formed layer is cured by UV radiation or heat. In the method of producing the optical element 1, even when the forming material shrinks during curing, the overhang 6 on the front surface 2a of the base 2 while connecting to the main part 5 shrinks in precedence to the main part 5, thereby alleviating shrinkage of the main part 5 in the depression 3 of the base 2. In addition, since the overhang 6 is provided so as to surround the depression 3, shrinkage of the main part 5 is uniformly alleviated. Consequently, deformation of the curved surface 4c of the main part 5 is reliably prevented and deformation of the optical function part 10 provided at the curved surface 4c is reliably prevented accordingly.
(25) In addition, even when stress caused by temperature changes during production or other reasons concentrates on the depression 3 of the base 2, the overhang 6 on the front surface 2a of the base 2 presses the main part 5 in the depression 3 of the base 2. Moreover, since the overhang 6 is provided so as to surround the depression 3, the main part 5 is pressed uniformly from the periphery. Separation of the formed layer 4 from the base 2 is thereby reliably prevented. With the method of producing the optical element 1, therefore, separation of the formed layer 4 and deformation of the optical function part 10 can be reliably prevented.
(26) The peripheral edge of the forming surface 30a of the forming mold 30 may be shaped so as to extend outward from the opening 3a of the depression 3. In this case, when the forming mold 30 is pressed against the forming material, the front end of the forming mold 30 is prevented from burying in the forming material and the forming material is prevented from coming around to the side surface 30b of the forming mold 30. Accordingly, when the forming mold 30 is pressed against the forming material, the forming material comes into abutment only with the forming surface 30a, thereby improving the releasability of the forming mold 30.
(27) An embodiment of the present invention has been described above. However, the present invention is not limited to the foregoing embodiment. For example, as shown in
(28) As shown in
(29) As a modification to the groove 8 provided in the front surface 2a of the base 2, as shown in
(30) The optical function part 10 is not limited to a grating and may have a variety of optical functions. As an example, as shown in
(31) The predetermined surface of the formed layer 4 that is provided with the optical function part 10 is not limited to the curved surface 4c. The predetermined may be a part of the front surface 4b that extends from the main part 5 to the overhang 6.
(32) As shown, for example, in
(33) A depression may be provided in place of the groove 8 in the front surface 2a of the base 2. A rectangular depression or a circular depression may be employed as this depression. Also in this case, the overhang 6 enters the depression provided in place of the groove 8, thereby improving the fixing strength of the formed layer 4. In the case where the base 2 is rectangular and the opening 3a of the depression 3 is circular as viewed from the depth direction of the depression provided in place of the groove 8, depressions (the depression provided in place of the groove 8) are provided with the depression 3 interposed therebetween on a diagonal line of the base 2, so that the base 2 can be reduced in size or the area of the opening 3a can be increased.
(34) A plurality of optical elements 1 are obtained by cutting (dicing) the substrate 20 into a grid pattern. However, the optical elements 1 can be formed one by one.
INDUSTRIAL APPLICABILITY
(35) According to an aspect of the present invention, an optical element and a method of producing the same are provided, in which separation of the formed layer and deformation of the optical function part can be prevented.
REFERENCE SIGNS LIST
(36) 1 optical element, 2 . . . base, 2a . . . front surface, 3 . . . depression, 3a . . . opening, 3b . . . inner surface, 4 . . . formed layer, 4b . . . front surface (predetermined surface), 4c . . . curved surface (opposite surface), 5 . . . main part (first portion), 6 . . . overhang (second portion), 8, 8a to 8i . . . groove (groove portion), 10 . . . optical function part, 30 . . . forming mold, 30a . . . forming surface.