LOW NUMERICAL APERTURE FIBER OUTPUT DIODE LASER MODULE
20230037106 · 2023-02-02
Inventors
- CHI-LUEN WANG (HSINCHU CITY, TW)
- HUNG-SHENG LEE (TAIPEI CITY, TW)
- TAI-MING CHANG (NEW TAIPEI CITY, TW)
- CHUN-HUI YU (TAOYUAN CITY, TW)
- YU-CHING YEH (CHIAYI COUNTY, TW)
- SHENG PING LAI (TAOYUAN CITY, TW)
- SHIH-WEI LIN (TAOYUAN CITY, TW)
- YUAN-HE TENG (HSINCHU COUNTY, TW)
- LI-CHANG TSOU (HSINCHU CITY, TW)
- SZUTSUN SIMON OU (TAIPEI CITY, TW)
Cpc classification
H01S5/02326
ELECTRICITY
H01S5/4012
ELECTRICITY
H01S5/0071
ELECTRICITY
H01S5/0286
ELECTRICITY
International classification
Abstract
A low numerical aperture fiber output diode laser module, which having several independent diode lasers, and collimated and converged the light beam, for the coupling the light to the core optical fiber with a core diameter of 105 um and a numerical aperture of 0.12. Compared with general products with a numerical aperture of 0.22, the light output angle is reduced to 55%, and use a general blue laser diode for verification. Use an optical software for facilitating the design and optimization of the parameters of the optical lens module.
Claims
1. A low numerical aperture fiber output diode laser module, comprising: a case; multiple laser diodes, which arranged inside the case for emitting light beams; an optical lens module, which arranged inside the case for collimating the light beams, and then converging into a convergent light beam in a space of the module; and an optic fiber, having a core optical fiber, the output of the optic fiber is setting with a low numerical aperture, and combining the optic fiber at the lateral side of the case, so the convergent light beam can be coupled with the core optical fiber to the low numerical aperture.
2. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein the diameter of the core optical fiber is 105 um, and the low numerical aperture is 0.12.
3. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein the optic fiber adopts high hydroxyl value.
4. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein the end face of the optic fiber adopts laser beam cutting method.
5. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein the optic fiber output end adopts a transparent mirror, and the transparent mirror adopts an airtight solder.
6. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein the laser diode includes a laser chip, the laser chip having a resonant cavity, the end face of the resonant cavity forms a specular surface and can be electroplated with a reflective film, and the reflectance of the reflective film is 20%.
7. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein at least having more than eight laser diodes.
8. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein the wavelength of the laser diode is 450 nm.
9. The low numerical aperture fiber output diode laser module as claimed in claim 1, wherein the optical lens module includes multiple fast axis collimating lenses, multiple slow axis collimating lenses and multiple reflecting mirrors; first, collimating the light beams by each of the fast axis collimating lenses and each of the slow axis collimating lenses, and then the light beams go through each of the reflecting mirrors for converging into a convergent light beam in a space of the module, and the convergent light beam can be coupled with the core optical fiber via a focusing lens.
10. The low numerical aperture fiber output diode laser module as claimed in claim 9, wherein the case includes a base and a cover, the base is provided with a concave part, the concave part has a mesa, the mesa can hold each of the laser diodes, so that the laser diodes can be arranged parallelly to each other; each of the fast-axis collimating lenses is arranged on the mesa, and is close to the front of each of the laser diodes; each of the slow-axis collimating lenses and each of the reflecting lenses are arranged on the concave part, and each of the slow-axis collimating lenses is arranged in front of each of the fast-axis collimating lenses, each of the reflecting lenses is arranged in front of each of the slow-axis collimating lenses, then the focusing lens is arranged on the lateral side of each of the reflecting lenses and combined on the lateral side of the concave part, and corresponds to the position of the focusing lens that corresponds to the position of the core optical fiber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0035] First, referring to
[0036] Multiple laser diodes 20 are arranged in the case 10 and excite multiple light beams 21. In this embodiment, the laser diode 20 can be form by a blue laser diode, a red laser, a green laser diode or a UV laser diode, and high-brightness requirements can also be achieved by this method; the laser diode 20 has at least 8 or more laser diode; The wavelength of the laser diode 20 is 400 nm-670 nm, also from UV to red light, but the present invention is not limit to this application.
[0037] An optical lens module 30, which arranged inside the case 10 for collimating the light beams 21, and then converging into a convergent light beam L in a space S of the module; in this embodiment, the optical lens module 30 includes multiple fast axis collimating lenses 31, multiple slow axis collimating lenses 32, multiple reflecting mirrors 33 and a focusing mirror 34; each of the fast axis collimating lenses 31 is arranged on the mesa 112 and near to the front of the laser diode 20; each of the slow-axis collimating lenses 32 and each of the reflecting lenses 33 are arranged on the concave part 111, and each of the slow axis collimating lenses 32 is arranged in front of the fast axis collimating lenses 31, and each of the reflecting mirrors 33 is arranged in front of the slow axis collimating lenses 32, for collimating the light beams by each of the fast axis collimating lenses 31 and each of the slow axis collimating lenses 32, and then the light beams go through each reflecting mirror 33 for converging into a convergent light beam L in a space S of the module, but the present invention is not limit to this application.
[0038] Also, in this embodiment, as
[0039] An optic fiber 40 has core optical fiber 41, the output of the optic fiber 40 is setting with a low numerical aperture 42, and combining the optic fiber 40 at the lateral side 101 of the case 10, so the convergent light beam L can be coupled with the core optical fiber 41 to the low numerical aperture 42; in this embodiment, the focusing lens 34 is arranged on the lateral side of each of the reflecting lenses 33 and combined on the lateral side 1111 of the concave part 111, and corresponds to the position of the focusing lens 34 that corresponds to the position of the core optical fiber 41, for making the convergent light beam L couple to the core optical fiber 41, through the focusing lens 34, but the present invention is not limit to this application.
[0040] Also, in this embodiment, as
[0041] An optical software 50, which verifies the laser diode 20, for facilitating the design and optimization of the parameters of the optical lens module 30, and achieves a theoretical coupling efficiency of more than 90%, but the present invention is not limit to this application.
[0042] With the feature disclosed above, the present invention adopts the output fiber with numerical aperture≤NA 0.12 and high hydroxyl value, making the optic fiber 40 has a better penetration rate for lasers with a wavelength of <460 nm; the end face 43 of the optic fiber 40 adopts laser beam cutting method, different from ordinary grinding and polishing, this method has the advantages of fast cutting and suitable for mass production, and reducing mirror damage caused by grinding; The laser chip 22 is packaged in an airtight environment to enhance the long-term durability of the laser, and the resonant cavity 221 of the laser chip 22 is coated with a reflective film 223 with a reflectivity 20% for withstanding the higher external reflected light, especially for laser processing purposes, as
[0043] 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 limited except as by the appended claims.