Claims
- 1. A method of manufacturing an optical element having an optical axis, comprising the steps of:
- (a) arranging a plurality of substantially planar layers of optical material having different refractive indices and Abbe numbers in order of their respective indices;
- (b) fusing and diffusing together said plurality of layers to form a solid body of optical material having a first face of optical material having the highest refractive index and a second face of material having the lowest refractive index of the plurality of selected optical materials;
- (c) removing two portions of said body, each including part of said first and second faces; and
- (d) joining one face of one portion of said body to a face of like refractive index on the second portion of the body to form the optical element having an interface where said two portions are joined together ad leaving two exposed faces, said optical axis being parallel to said interface.
- 2. The method according to claim 1 wherein the joining step further comprises the steps of:
- (a) forming a convex surface on said face of said one portion and said face of like refractive index on said second portion; and
- (b) heating the portions with said convex faces in contact with each other to cause said convex faces to fuse together and eliminate said interface.
- 3. The method of claim 2, wherein the step of heating includes a step of heating the portions with the convex faces in contact with each other to a fusing temperature which is 30 to 50.degree. C. above the glass transition temperature of the convex formed faces but which is less than the glass softening temperature of the convex formed faces.
- 4. The method according to claim 3, wherein the step of joining includes the steps of:
- (a) heating said two portions to said fusing temperature;
- (b) maintaining the temperature of said two portions at said fusing temperature for a period of time sufficient to eliminate said interface and form said optical element, having a smoothly varying profile in refractive index; and
- (c) cooling said optical element to about room temperature at a rate of 5.degree. C./min.
- 5. The method according to claim 1, wherein the step of arranging the optical materials include a step of selecting said optical materials for said layers such that K for each two adjacent layers, is defined as: ##EQU12## where .DELTA.n=change in refractive index of materials in layers m and m-1 for yellow light, m is an integer between 2 and q where q is the number of layers in said plurality of substantially planar layers, v.sub.dm =Abbe number for yellow light of layer m, v.sub.d(m-1) =Abbe number for yellow light of layer m-1, n.sub.dm =refractive index for yellow light of layer m, and n.sub.d(m-1) =refractive index for yellow light of layer m-1.
- 6. The method according to claim 5, wherein the quantity v.sub.dm (n.sub.d(m-1) -1) is substantially equal to quantity v.sub.d(m-1) (n.sub.dm -1), so that the value of K, being equal to the Abbe number of the element, is greater than 100.
- 7. The method according to claim 5, wherein the step of selecting said optical materials includes a substep of controlling the refractive index and dispersion, of at least one optical material, by including a combination of oxides from the group of oxides consisting of PbO, BaO, La.sub.2 O.sub.3, Nb.sub.2 O.sub.5, Ta.sub.2 O.sub.3, WO.sub.3 and ZrO.sub.2.
- 8. The method according to claim 1 further including a step of forming one of the exposed faces into a curved surface.
- 9. The method of method of claim 1, wherein said optical element is subjected to at least one of slicing, grinding, and polishing.
- 10. A method of manufacturing an optical element having an optical axis, comprising the steps of:
- (a) arranging a plurality of optical materials having different refractive indices and Abbe numbers into a plurality of parallel adjoining layers, each layer having a refractive index and an Abbe number different from those of an adjacent layer, wherein zones of optical materials are arranged to define a profile of refractive indices which is symmetric about a central plane of symmetry containing the optical axis of the element and parallel to boundaries between the layers; and
- (b) fusing and diffusing the plurality of the optical materials together to cause said layers to fuse together and eliminate said boundaries between said layers to form said optical element.
- 11. The method according to claim 10, wherein the profile of refractive indices is parabolic or hyperbolic.
- 12. The method according to claim 11, wherein the step of arranging the optical materials include a step of selecting said optical materials for said layers such that K for each two adjacent layers, is defined as: ##EQU13## where .DELTA.n=change in refractive index of materials in layers m and m-1 for yellow light, m is an integer between 2 and q where q is the number of layers in said plurality of substantially planar layers, v.sub.dm =Abbe number for yellow light of layer m, v.sub.d(m-1) =Abbe number for yellow light of layer m-1, n.sub.dm =refractive index for yellow light of layer m, and n.sub.d(m-1) =refractive index for yellow light of layer m-1.
- 13. A method for manufacturing an optical element according to claim 10, wherein the optical materials are selected such that K, which is equal to the Abbe number, has a value of greater than 100.
Parent Case Info
This is a division of application Ser. No. 08/400,804 filed Mar. 8, 1995, now U.S. Pat. No. 5,689,374.
US Referenced Citations (12)
Divisions (1)
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Number |
Date |
Country |
Parent |
400804 |
Mar 1995 |
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