IP Library › Granted Patent US 8,977,086
Granted Patent B2
US 8,977,086 · App. 12/702,952 · Granted Mar 10, 2015

Tapered waveguide coupler and spectrometer

Inventor: Raymond George DeCorby (Edmonton, CA)
Assignee: Governors of the University of Alberta
G02B6/1228G01J3/02G01J3/0205G01J3/0216G01J3/0256G01J3/4406G02B6/02304G02B6/12007G01J3/26
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Quick Facts
Patent No.
US 8,977,086
App. No.
12/702,952
Granted
Mar 10, 2015
Kind
B2
Abstract

A method of forming a waveguide, the method comprising the steps of: forming a multilayer stack of light guiding layers; and delaminating the multilayer stack between at least two of the light guiding layers to form a waveguide between the light guiding layers; in which the patterned region has converging sides and the waveguide is tapered, the multilayer stack having increased transmissivity at a region corresponding to a selected thickness of the waveguide. A tapered waveguide is also disclosed, comprising: a multilayer stack of light guiding layers; the multilayer stack defining a channel between at least a first waveguiding layer and a second waveguiding layer; the channel having a diminishing thickness in a first direction; and at least one of the first waveguiding layer and the second waveguiding layer having a region of increased transmissivity adjacent a selected thickness of the core. Methods for the use of the tapered waveguide as an optical coupler or spectrometer are also disclosed. Methods for enhancing the optical resolution of the taper waveguide when operated as a spectrometer are also disclosed.

Claims (25)

1. A tapered leaky waveguide, comprising:

a first waveguiding layer and a second waveguiding layer having a core between the first waveguiding layer and the second waveguiding layer, each of the first waveguiding layer and the second waveguiding layer comprising an omni-directional reflector for light propagating in at least one leaky mode within the core;

the core having a diminishing thickness in a first direction and having a selected thickness at a position at which light propagating in the tapered leaky waveguide forms a transverse resonant mode corresponding to a mode cutoff of a desired wavelength of light propagating within the core; and

a light collection element disposed to receive light that, in operation of the tapered leaky waveguide, propagates perpendicular to the core at the position of the selected thickness.

2. The tapered leaky waveguide of claim 1 in which the core has converging sides in the first direction.

3. The tapered leaky waveguide of claim 1 in which the light collection element comprises a window in the first waveguiding layer.

4. The tapered leaky waveguide of claim 1 in which the tapered leaky waveguide is formed as a part of a multilayer stack of light guiding layers.

5. The tapered leaky waveguide of claim 1 in which the first waveguiding layer and the second waveguiding layer comprise at least one of one-dimensional, two-dimensional, and three-dimensional photonic crystals.

6. The tapered leaky waveguide of claim 1 , in which the position of the selected thickness is a first position having a first selected thickness and the light collection element is a first light collection element, the leaky waveguide further comprising at least a second position having a second selected thickness spaced from the first position along the core in the first direction, and a second light collection element disposed to receive light that, in operation of the tapered leaky waveguide, propagates perpendicular to the core at the second position.

7. The tapered leaky waveguide of claim 1 in which the light collection element comprises a photodetector or photodetector array positioned to detect light passing from the core at the position of the selected thickness.

8. The tapered leaky waveguide of claim 7 , further comprising at least one of an angular-dependent transmission filter and a low numerical aperture optic between the core and the photodetector or photodetector array.

9. The tapered leaky waveguide of claim 1 used as at least one of a spectrometer, wavelength shift sensor, on-chip optical network, absorption analyzer, fluorescence analyzer, and wavelength division multiplexor.

10. The tapered leaky waveguide of claim 1 used as a stationary transform spectrometer.

11. The tapered leaky waveguide of claim 1 further comprising a second waveguide optically coupled to the core at the position of the selected thickness.

12. The tapered leaky waveguide of claim 1 in which the first waveguiding layer and the second waveguiding layer form omni-directional reflectors for at least one state of light polarization within a specified wavelength band.

13. A waveguide, comprising:

a multilayer stack of light guiding layers;

the multilayer stack being delaminated in a patterned region between light guiding layers, the patterned region having converging sides, the waveguide being tapered along a waveguide length;

in which the multilayer stack comprises an optical path normal to the waveguide at a position along the waveguide length corresponding to a selected thickness of the waveguide at which light propagating in the waveguide forms a transverse resonant mode corresponding to a mode cutoff of a desired wavelength of light propagating within the waveguide; and

a light collection element disposed to receive light that, in operation of the waveguide, propagates perpendicular to the waveguide at the position of the selected thickness.

14. The waveguide of claim 13 in which the optical path is at least partially transparent to light of a desired wavelength.

15. A method of light transmission, the method comprising:

providing a first waveguiding layer and a second waveguiding layer with a core between the first waveguiding layer and the second waveguiding layer, each of the first waveguiding layer and the second waveguiding layer comprising an omni-directional reflector for light propagating in at least one leaky mode within the core, in which the core has a diminishing thickness in a first direction and having a selected thickness at a position at which light propagating in the tapered leaky waveguide forms a transverse resonant mode corresponding to a mode cutoff of a desired wavelength of light propagating within the core;

propagating light within the core, the light having the desired wavelength; and

collecting light propagating perpendicular to the core at the position of the selected thickness.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 4, 2015
From: DECORBY, RAYMOND GEORGE
To: GOVERNORS OF THE UNIVERSITY OF ALBERTA
Reel/Frame 034885/0117 →
Continuity (2)
Provisional Application 61152133 · Feb 12, 2009
Related Publication 20100202734A1 · Aug 12, 2010