HOLLOW-CORE FIBER WITH ANTI-RESONANT ARCHES AND METHOD OF MANUFACTURING THEREOF
20200326473 ยท 2020-10-15
Inventors
Cpc classification
C03B2203/42
CHEMISTRY; METALLURGY
C03B2203/22
CHEMISTRY; METALLURGY
C03B2201/86
CHEMISTRY; METALLURGY
C03B37/022
CHEMISTRY; METALLURGY
International classification
C03B37/012
CHEMISTRY; METALLURGY
Abstract
A hollow-core fiber with a single layer of robust anti-resonant optical arches is disclosed, which is designed and made of infrared soft glass and allows the transmission of mid- to long-infrared wavelengths (1-15 microns). Each curved arch is solidly attached at two locations on the outer solid region surface and together the arches define the core diameter. The thickness and spacing between the arches are selected to minimize the fiber transmission loss <1 dB/m at wavelengths in the mid- to long-infrared where the infrared soft glass has high absorption >30 dB/m. A hollow-core preform with anti-resonant arches is made by extrusion of infrared soft glasses through a die specifically designed to produce the hollow-core fiber with anti-resonant arches.
Claims
1. A hollow-core fiber comprising: a tube having an outer boundary and an inner boundary with a solid region therebetween; and a plurality of substantially identical arched structures in direct contact with the inner boundary; wherein together the inner boundary and the plurality of arched structures define a passageway within the tube, which passageway is capable of transmission of mid- to long-infrared light; and wherein each of the substantially identical arched structures is directly attached at two locations to the inner boundary of the tube.
2. The hollow-core fiber of claim 1, wherein each of the substantially identical arched structures is separated from an adjacent arched structure by a gap on the inner boundary of the tube such that a portion of the inner boundary is disposed between each adjacent substantially identical arched structure.
3. The hollow-core fiber of claim 1, wherein each of the substantially identical arched structures has a refractive index n and a thickness t, wherein the refractive index n and the thickness t are designed such that multiple wide transmission wavelength bands (labeled m) are centered between the high-loss resonant wavelengths .sub.m of the fiber at:
4. (canceled)
5. The hollow-core fiber of claim 1, wherein each of the substantially identical arched structures comprises a pair of legs directly attached to the inner boundary of the tube.
6. The hollow-core fiber of claim 5, wherein each of the substantially identical arched structures comprises a curvilinear region which is disposed between the pair of legs.
7. (canceled)
8. The hollow-core fiber of claim 5, wherein each leg of the pair of legs is curved.
9. The hollow-core fiber of claim 6, wherein the curvilinear region bridges the pair of legs and projects into the passageway of the tube.
10. The hollow-core fiber of claim 6, wherein the curvilinear region has a shape which is circular, elliptical, or oval.
11. The hollow-core fiber of claim 1, wherein the tube and the plurality of substantially identical arched structures comprise one or more transparent materials in the mid- to long-infrared wavelengths of about 2-15 microns.
12. The hollow-core fiber of claim 11, wherein the one or more transparent materials comprise one or more soft glasses comprising chalcogenide, fluoride, and/or tellurite.
13. The hollow-core fiber of claim 1, wherein the passageway is capable of transmission of mid- to long-infrared wavelengths of about 2-15 microns with a fiber guidance loss of about <1 dB/m.
14. The hollow-core fiber of claim 1, wherein the tube and the plurality of substantially identical arched structures comprise one or more materials with absorption in the mid- to long-infrared wavelengths of about 2-15 microns exceeding 30 dB/m.
15. The hollow-core fiber of claim 14, wherein the passageway is capable of transmission of mid- to long-infrared wavelengths of about 2-15 microns with a fiber guidance loss of about <1 dB/m.
16. (canceled)
17. (canceled)
18. (canceled)
19. (canceled)
20. (canceled)
21. (canceled)
22. The hollow-core fiber of claim 1, further comprising an optical device comprising at least one of: a laser beam delivery system, an ultra-short pulse laser beam delivery system, and a mid-infrared transmission system.
23. A hollow-core fiber comprising: a tube having an outer boundary and an inner boundary with a solid region therebetween; and a plurality of substantially identical arched structures in direct contact with the inner boundary; wherein together the inner boundary and the plurality of arched structures define a passageway within the tube, which passageway is capable of transmission of mid- to long-infrared light; wherein each of the substantially identical arched structures comprises a pair of legs directly attached to the inner boundary of the tube; and wherein each leg of the pair of legs is straight.
24. The hollow-core fiber of claim 23, wherein each of the substantially identical arched structures is separated from an adjacent arched structure by a gap on the inner boundary of the tube such that a portion of the inner boundary is disposed between each adjacent substantially identical arched structure.
25. The hollow-core fiber of claim 23, wherein each of the substantially identical arched structures has a refractive index n and a thickness t, wherein the refractive index n and the thickness t are designed such that multiple wide transmission wavelength bands (labeled m) are centered between the high-loss resonant wavelengths .sub.m of the fiber at:
26. The hollow-core fiber of claim 23, wherein each of the substantially identical arched structures comprises a curvilinear region which is disposed between the pair of legs.
27. The hollow-core fiber of claim 26, wherein the curvilinear region bridges the pair of legs and projects into the passageway of the tube.
28. The hollow-core fiber of claim 26, wherein the curvilinear region has a shape which is circular, elliptical, or oval.
29. The hollow-core fiber of claim 23, wherein the tube and the plurality of substantially identical arched structures comprise one or more transparent materials in the mid- to long-infrared wavelengths of about 2-15 microns.
30. The hollow-core fiber of claim 29, wherein the one or more transparent materials comprise one or more soft glasses comprising chalcogenide, fluoride, and/or tellurite.
31. The hollow-core fiber of claim 23, wherein the passageway is capable of transmission of mid- to long-infrared wavelengths of about 2-15 microns with a fiber guidance loss of about <1 dB/m.
32. The hollow-core fiber of claim 23, wherein the tube and the plurality of substantially identical arched structures comprise one or more materials with absorption in the mid- to long-infrared wavelengths of about 2-15 microns exceeding 30 dB/m.
33. The hollow-core fiber of claim 32, wherein the passageway is capable of transmission of mid- to long-infrared wavelengths of about 2-15 microns with a fiber guidance loss of about <1 dB/m.
34. The hollow-core fiber of claim 23, further comprising an optical device comprising at least one of: a laser beam delivery system, an ultra-short pulse laser beam delivery system, and a mid-infrared transmission system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The accompanying drawings illustrate certain aspects of embodiments of the present invention, and should not be used to limit the invention. Together with the written description the drawings serve to explain certain principles of the invention.
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF VARIOUS EMBODIMENTS OF THE INVENTION
[0021] Reference will now be made in detail to various exemplary embodiments of the invention. It is to be understood that the following discussion of exemplary embodiments is not intended as a limitation on the invention. Rather, the following discussion is provided to give the reader a more detailed understanding of certain aspects and features of the invention.
[0022] Generally, a hollow-core fiber is designed and made from an extruded soft glass preform that utilizes a single layer of robust reflecting optical arches for transmission of mid- to long-infrared light.
[0023] More precisely,
[0024] Soft glass has a low melting temperature, <800 C., and can be extruded into rods or tubes of various shapes. Soft glasses for preferred embodiments include infrared glasses such as chalcogenide, fluoride, and tellurite, for example. Typically, the soft glass is inserted in a sleeve inside an oven and pushed with a piston through a die designed for the extrusion process. The extrusion die can be made of metals like stainless steel, titanium alloy, aluminum alloy, or Inconel, for example.
[0025] The extruded hollow-core preform with anti-resonant arches is pulled in a fiber using traditional fiber draw techniques. The hollow-core preform is attached to a preform feed and connected to pressurization system where the hollow core and the anti-resonant arches can be independently pressurized. The preform is lowered in the oven at constant feed speed. The heated preform tip forms a bead that drops down the fiber draw tower carrying the fiber. The fiber is pulled and spooled at a draw speed of typically between 2 to 20 m/min. Typical pressures inside the hollow-core preform with anti-resonant arches are controlled within a range between 0 to 50 mbar to precisely adjust the fiber geometries with the desired hollow core diameter and arch dimensions; basically, a higher inner pressure increases the arches' size and reduces the arches' wall thickness.
EXAMPLE 1
[0026] The hollow-core preform with anti-resonant arches was extruded with the extrusion die showed in
[0027] Referring to
EXAMPLE 2
[0028] Example 2 relates to a design of the hollow-core fiber with 8 anti-resonant arches for the transmission of CO.sub.2 laser light at 10.6 microns. The fiber parameters used for the simulations are: As.sub.2S.sub.3 glass, a hollow core diameter of 0.185 mm, an anti-resonant arch wall thickness of 3.7 microns, and a gap between the arches of 21.5 microns.
[0029] The present invention has been described with reference to particular embodiments having various features. In light of the disclosure provided above, it will be apparent to those skilled in the art that various modifications and variations can be made in the practice of the present invention without departing from the scope or spirit of the invention. One skilled in the art will recognize that the disclosed features may be used singularly, in any combination, or omitted based on the requirements and specifications of a given application or design. When an embodiment refers to comprising certain features, it is to be understood that the embodiments can alternatively consist of or consist essentially of any one or more of the features. Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention.
[0030] It is noted in particular that where a range of values is provided in this specification, each value between the upper and lower limits of that range is also specifically disclosed. The upper and lower limits of these smaller ranges may independently be included or excluded in the range as well. The singular forms a, an, and the include plural referents unless the context clearly dictates otherwise. It is intended that the specification and examples be considered as exemplary in nature and that variations that do not depart from the essence of the invention fall within the scope of the invention. Further, all of the references cited in this disclosure are each individually incorporated by reference herein in their entireties and as such are intended to provide an efficient way of supplementing the enabling disclosure of this invention as well as provide background detailing the level of ordinary skill in the art.