OPTICAL LENS WITH LASER INDUCED PERIODIC SURFACE STRUCTURE
20200361165 ยท 2020-11-19
Inventors
Cpc classification
B23K26/046
PERFORMING OPERATIONS; TRANSPORTING
B29D11/00326
PERFORMING OPERATIONS; TRANSPORTING
B29D11/00461
PERFORMING OPERATIONS; TRANSPORTING
B29D11/00134
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29D11/00
PERFORMING OPERATIONS; TRANSPORTING
B23K26/046
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An optical lens with laser induced periodic surface structure has an optical lens made in one-piece with a surface and a convex surface. The convex surface has a microstructure of periodic surface induced and formed by laser. The periodic surface structure has a plurality of linear structures periodically arranged with an interval of 50 nm-1000 nm between each other and a height of 50 nm-500 nm.
Claims
1. An optical lens with laser induced periodic surface structure, comprising: an optical lens formed in one-piece and having a surface and a convex surface corresponding to said surface, said convex surface induced by laser to form a microstructure, said microstructure including a plurality of linear structures periodically arranged on said convex surface, said linear structure having an interval between each other ranging from 50 nm to 1000 nm and a height ranging from 50 nm to 500 nm.
2. The optical lens with laser induced periodic surface structure as claimed in claim 1, wherein the optical lens is made of either glass or polymer materials.
3. The optical lens with laser induced periodic surface structure as claimed in claim 1, wherein the linear structures are in conic shapes protruding upwardly.
4. The optical lens with laser induced periodic surface structure as claimed in claim 1, wherein the linear structures are arranged in moth eyes structures protruding upwardly.
5. The optical lens with laser induced periodic surface structure as claimed in claim 1, wherein a layer of thin film is further covered on the convex surface of the optical lens with a refractive index matching a refractive index of materials of the optical lens.
6. The optical lens with laser induced periodic surface structure as claimed in claim 5, wherein the thin film is made of metals, semiconductors or dielectrics.
7. The optical lens with laser induced periodic surface structure as claimed in claim 5, wherein the thin film has a thickness of 20-500 nm.
8. The optical lens with laser induced periodic surface structure as claimed in claim 1, wherein the present invention further includes a laser device with parameters including pulse width, wavelength, focus extent, pulse repetition frequency, scan rate and energy density, and the laser parameters are adjustable to control formation of the periodic surface structure.
9. The optical lens with laser induced periodic surface structure as claimed in claim 8, wherein the pulse width parameter is 1 fs-100 ps; the wavelength parameter is 300 nm-1500 nm; the focus extent parameter is 1 um-500 um; the pulse repetition frequency parameter is 1 Hz-10 MHz; the scan rate parameter is 40 um/s-5 m/s; and the energy density parameter is 0.01 J/cm.sup.2-50 J/cm.sup.2.
10. The optical lens with laser induced periodic surface structure as claimed in claim 8, wherein the pulse width parameter is 20 fs-2000 fs; the wavelength parameter is 300 nm-1500 nm; the focus extent parameter is 1 um-500 um; the pulse repetition frequency parameter is 1 Hz-3 MHz; the scan rate parameter is 40 um/s-5 m/s; and the energy density parameter is 500 mJ/cm.sup.2-3000 mJ/cm.sup.2.
11. The optical lens with laser induced periodic surface structure as claimed in claim 8, wherein the optical lens is made of glass; the pulse width parameter is 100 fs; the wavelength parameter is 800 nm; the focus extent parameter is 80 um; the pulse repetition frequency parameter is 62 Hz; the scan rate parameter is 160 um/s; and the energy density parameter is 995 mJ/cm.sup.2.
12. The optical lens with laser induced periodic surface structure as claimed in claim 8, wherein a layer of thin film is further covered on the convex surface of the optical lens with a refractive index matching a refractive index of materials of the optical lens, said thin film made of ITO with a thickness of 180 nm, the pulse width parameter being 100 fs, the wavelength parameter being 800 nm, the focus extent parameter being 15 um, the pulse repetition frequency parameter being 2000 Hz; the scan rate parameter being 40 um/s; and the energy density parameter being 190 mJ/cm.sup.2-230 mJ/cm.sup.2.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0037] Referring to
[0038] According to the manufacturing method above, the present invention includes an optical lens 10 formed in one-piece and having a surface 101 and a convex surface 102 corresponding to the surface 101. The convex surface 102 is induced by laser to form a microstructure 30; the microstructure 30 includes a plurality of linear structures 31 periodically arranged on the convex surface 102 and the linear structures 31 has an interval D between each other ranging from 50 nm to 1000 nm and a height H ranging from 50 nm to 500 nm.
[0039] In a preferred embodiment, the pulse width parameter 211 is 1 fs-100 ps; the wavelength parameter 212 is 300 nm-1500 nm; the focus extent parameter 213 is 1 um-500 um; the pulse repetition frequency parameter 214 is 1 Hz-10 MHz; the scan rate parameter 215 is 40 um/s-5 m/s; and the energy density parameter 216 is 0.01 J/cm.sup.2-50 J/cm.sup.2. In another preferred embodiment, the pulse width parameter 211 is 20 fs-2000 fs; the wavelength parameter 212 is 300 nm-1500 nm; the focus extent parameter 213 is 1 um-500 um; the pulse repetition frequency parameter 214 is 1 Hz-3 MHz; the scan rate parameter 215 is 40 um/s-5 m/s; and the energy density parameter 216 is 500 mJ/cm.sup.2-3000 mJ/cm.sup.2.
[0040] Furthermore, the optical lens 10 is made of glass or polymer materials. With reference to
[0041]
[0042] A layer of thin film 11 is further covered on the convex surface 102 with a refractive index matching a refractive index of materials of the optical lens 10. The thin film 11 has a thickness of 20-500 nm or 30-300 nm and is made of metals, semiconductors or dielectrics. Referring to
[0043] Further referring to
[0044] In the first and second embodiments, the upwardly protruding linear structures 31 can intercept external water or dirts at the top 302 and avoid contact area of the external water or dirts with the optical lens 10 by controlling the size thereof, thereby achieving the feature of hydrophobic. Or the protruding linear structures 31 can be controlled in size to allow external water to flow into the internals D between the linear structures 31, thereby achieving the feature of hydrophilic.
[0045] With the structures disclosed above, the laser induced periodic surface structure 30 generated on the convex surface 102 of the optical lens 10 further forms an infrastructure B together with the surface 101 of the optical lens 10. Such infrastructure B has advantages as following.
[0046] 1. The infrastructure B is formed to be in one-piece for a gradual change of the refractive index to the optical lens 10 to avoid the Fresnel loss caused in the process. In practices, this can reduce the stray lights in the images.
[0047] 2. The one or multiple thin films 11 on the convex surface 102 can be those with materials having a refractive index close to the one of the infrastructure B, so as to reduce the Fresnel loss in the process.
[0048] 3. The traditional manufacturing process cannot be applied on curved surfaces, but the present invention is able to adjust the scanning route and focus point to generate the microstructure on the convex surface in a large scale.
[0049] 4. The traditional manufacturing process has to go through manufacturing photomask, photolithography and etching and form the microstructure with careful control of the quality and other factors at each stage. While with the laser to manufacture the microstructure, the final produce of the manufacturing process can be simply controlled by setting the parameters of the laser device without going through other processes and applying the chemical liquids of photoresist and etchant In other words, there is almost no wastes in the manufacturing process according to the present invention, making it simple and eco-friendly.
[0050] Although particular embodiments of the invention have been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.