IP Library Granted Patent US 7,796,854
Granted Patent B2
US 7,796,854 · App. 12/392,308 · Granted Sep 14, 2010

Hollow-core photonic bandgap fiber polarizer

Assignee: The Hong Kong Polytechnic University
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Quick Facts
Patent No.
US 7,796,854
App. No.
12/392,308
Granted
Sep 14, 2010
Kind
B2
Abstract

A hollow-core photonic bandgap fiber polarizer may include a core, an inner cladding surrounding the core, the inner cladding including a plurality of capillaries, and an outer cladding at least partially surrounding the inner cladding. A section of the capillaries distal to the core is asymmetric relative to a section of the capillaries proximal to the core.

Claims (25)

1. A hollow-core photonic bandgap fiber polarizer, comprising:

a substantially symmetric hollow core;

an inner cladding surrounding said core, said inner cladding comprising a plurality of rings of capillaries with an innermost ring closest to said core and an outmost ring furthest from said core; and

an outer cladding at least partially surrounding said inner cladding,

wherein a longitudinal section of said capillaries in part of said inner cladding is deformed in an asymmetric manner by which deformation is progressively less severe from said outmost ring to said innermost ring and capillaries in at least said innermost ring are substantially not deformed.

2. The polarizer of claim 1 , wherein said section extends from a few hundreds of micrometers to tens of millimeters along said inner cladding in a longitudinal direction.

3. The polarizer of claim 1 , wherein said longitudinal section is 1 to 6 mm in length.

4. The polarizer of claim 1 , further comprising a polarization extinction ratio greater than 25 dB.

5. The polarizer of claim 1 , further comprising an operating wavelength range greater than 50 nm.

6. The polarizer of claim 1 , wherein said inner cladding comprises air and silica.

7. The polarizer of claim 6 , wherein said inner cladding further comprises an air filing ratio of larger than 90%.

8. A polarization mode interferometer, comprising a first polarizer according to claim 1 and a second polarizer according to claim 1 , wherein said two polarizers are positioned in series along a same fiber separated by a predetermined distance longitudinally.

9. The hollow-core photonic bandgap fiber polarizer of claim 1 , wherein said symmetric core is of a shape and size defined by removal of seven capillaries.

10. The hollow-core photonic bandgap fiber polarizer of claim 1 , wherein said inner cladding comprises eight rings of capillaries, and capillaries in the innermost ring are not deformed while deformation becomes progressively severe from the second innermost ring to the outermost ring.

11. A method of making a hollow-core photonic bandgap fiber polarizer, comprising:

providing a fiber having a plurality of capillaries surrounding a core; and

modifying a section of said capillaries along a longitudinal direction of said fiber,

wherein said section of said capillaries is deformed asymmetrically in a cross-sectional view.

12. The method of claim 11 , wherein said modifying step comprises laser deforming or collapsing of said capillaries.

13. The method of claim 11 , wherein said modifying comprises exposing said section to a pulsed CO 2 laser.

14. The method of claim 13 , wherein said laser comprises a pulse width from 1 to 20 μs.

15. The method of claim 13 , wherein said laser comprises a repetition rate from 1 to 50 kHz.

16. The method of claim 13 , wherein said laser comprises an average power from 0.1 to 1 W.

17. The method of claim 13 , wherein said modifying step comprises:

scanning said laser transversely across said section, and continuing said scanning longitudinally along said section, with a step size between transverse scans from 20 to 200 μm.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 4, 2009
From: JIN, WEI; XUAN, HAIFENG
To: THE HONG KONG POLYTECHNIC UNIVERSITY
Reel/Frame 022633/0443 →
Continuity (2)
Provisional Application 6106424300 · Feb 25, 2008
Related Publication 20090220186A1 · Sep 3, 2009