A monolithic version of optical multiplexer/demultiplexer with an improved spectral characteristics is provided by two diffraction gratings arranged optically in tandem and with a field stop in the coupling between them, the gratings also being arranged to provide free spectral ranges differing by a factor of at least two, and having a coupling between them that carries over into the second grating information concerning the dispersion afforded by the first grating. The field stop is constituted by a pair of etched troughs arranged in the pattern of an open chevron.
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1. An optical multiplexer/demultiplexer for the multiplexing/demultiplexing of optical signal channels at a substantially uniform optical frequency spacing, which multiplexer/demultiplexer includes, in an integrated waveguide optics structure, a set of input/output ports optically coupled with an output/input port via a tandem arrangement of first and second optical waveguide diffraction gratings that provide multiple optical waveguide paths from each member of the set of input-output ports to the output/input port via different grating elements of the gratings,
wherein the difference in optical path length occasioned by paths via adjacent optical waveguide elements of the first grating is greater than that occasioned by paths via adjacent optical waveguide elements of the second grating, wherein said difference in optical path length defines for its associated grating a frequency range, the Free Spectral range, being the frequency range over which said optical path length difference produces a phase difference whose value ranges over 2π, wherein the Free Spectral range of the first diffraction grating is matched with the optical frequency spacing of the optical signal channels, wherein the Free Spectral range of the second diffraction grating is at least as great as the sum formed by the addition of the difference in frequency between adjacent frequency channels of the multiplexer/demultiplexer the difference in frequency between the highest and lowest frequency channels of the multiplexer/demultiplexer, wherein the portion of the optical coupling between the set of input/output ports and the output/input port that extends between the first and second diffraction gratings couples spatial information between the two gratings in addition to intensity information, and includes a field stop constituted by a pair of reflecting facets, inclined at an acute angle to each other, created by the provision of wells in the integrated waveguide optics structure, and defining between them an aperture through which all light coupled between the first and second diffraction gratings is coupled, and wherein the length of the facets and the angle between them are related such that light emitted from either diffraction grating is not able, by multiple reflection in the facets, to couple into the other diffraction grating, or back into the same diffraction grating from which that light was emitted.
2. An optical multiplexer/demultiplexer as claimed in
3. A wavelength division multiplexed optical transmission system including at least one multiplexer as claimed in
4. A wavelength division multiplexed optical transmission system including at least one demultiplexer as claimed in
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Optical Wavelength Division Multiplexed (WDM) systems ideally require passive optical wavelength multiplexers and demultiplexers which have isolated pass-bands which are flat-topped so as to allow a measure of tolerance in the spectral positioning of the individual signals of the WDM system within these pass-bands. One method of multiplexing or demultiplexing channels in an optical WDM system relies upon the use of multilayer dielectric interference filters. Another relies upon Bragg reflection effects created in optical fibres. A third method, the method with which the present invention is particularly concerned, relies upon diffraction grating effects.
One form that such a diffraction grating can take for wavelength multiplexing/demultiplexing is the form described in EP 0 254 453, which also refers, with particular reference to its FIG. 5, to the possibility of having a tandem arrangement of two diffraction gratings arranged to provide a combined intensity transfer function that is the product of the intensity transfer function of its component diffraction grating 40 with that of its component diffraction grating 42.
An alternative form that such a diffraction grating can take is an optical waveguide grating that includes a set of optical waveguides in side-by-side array, each extending from one end of the array to the other, and being of uniformly incrementally greater optical path length from the shortest at one side of the array to the longest at the other. Such an optical grating constitutes a component of the multiplexer described by C Dragone et al., `Integrated Optics N×N Multiplexer on Silicon`, IEEE Photonics Technology Letters, Vol. 3, No. 10, October 1991, pages 896-9. Referring to
A tandem arrangement of this alternative form of diffraction grating can also be constructed, an example of such an arrangement being described in EP 0 591 042 with particular reference to its FIG. 3. This tandem arrangement similarly provides a combined intensity transfer function that is the product of the intensity transfer functions of its two component diffraction gratings. The response of this tandem arrangement also provides a typically Gaussian fall off in power that is similarly far from the ideal of a flat-topped response.
A construction of multiplexer/demultiplexer that also uses a tandem arrangement of optical waveguide gratings, but which is capable of achieving a response that is more nearly flat-topped without introducing an excessive insertion loss is described in the specification of WO 98/04944, to which specification attention is specifically directed and its teaching incorporated herein by reference.
WO 98/04944 discusses the desirability, at least in some circumstances, of incorporating some form of field stop between the two optical waveguide diffraction gratings of a tandem pair. In bulk-optics composite optical systems, a field stop is typically constituted by a diaphragm of opaque, usually black, material that is provided with an aperture through which light is able to pass. The size and shape of this aperture determines the cross-sectional area of the pencil of light that is able to couple, by penetration through the aperture, from an optical system on one side of the diaphragm into an optical system on the other side. The function of the field stop is to define the boundaries of this cross-sectional area, typically for the purpose of permitting the passage of as much light as is consistent with maintaining a desired quality of imaging. If the two optical systems are optically coupled by means of a reflector, this same function of defining the boundaries of the cross-sectional area of the pencil of light that optically couples the two systems may alternatively be effected by definition of the boundaries of the reflector itself. The sole example of field stop specifically exemplified in WO 98/04944 is a field stop of this latter (reflection type) kind.
The present invention is directed to the provision of transmission type field stops of the type described in the specification of WO 98/04944 where one optical waveguide diffraction grating is directly coupled, without reflection, with another optical waveguide diffraction grating.
An object of the present invention is to devise a method of providing such as field stop, the method being one that is readily capable of being implemented in the construction of a multiplexer/demultiplexer in which the two gratings are formed in the same monolithic integrated optics structure.
According to the present invention there is provided an optical multiplexer/demultiplexer for the multiplexing/demultiplexing of optical signal channels at a substantially uniform optical frequency spacing, which multiplexer/demultiplexer includes, in an integrated waveguide optics structure, a set of input/output ports optically coupled with an output/input port via a tandem arrangement of first and second optical waveguide diffraction gratings that provide multiple optical waveguide paths from each member of the set of input-output ports to the output/input port via different grating elements of the gratings,
wherein the difference in optical path length occasioned by paths via adjacent optical waveguide elements of the first grating is greater than that occasioned by paths via adjacent optical waveguide elements of the second grating,
wherein said difference in optical path length defines for its associated grating a frequency range, the Free Spectral Range, being the frequency range over which said optical path length difference produces a phase difference whose value ranges over 2π,
wherein the Free Spectral Range of the first diffraction grating is matched with the optical frequency spacing of the optical signal channels,
wherein the Free Spectral Range of the second diffraction grating is at least as great as
A schematic diagram of a multiplexer/demultiplexer device constructed in accordance with the teachings of PCT GB 97/02051 (to which previous reference has already been made) is depicted in FIG. 2. This multiplexer/demultiplexer device has two optical waveguide diffraction gratings 20 and 21 optically in tandem. These gratings exhibit Free Spectral Ranges (FSRs) that differ in magnitude by a factor at least equal to the number of channels being separated. Grating 20 corresponds to grating 10 of
It has previously been mentioned that WO 98/04944 discusses the desirability, at least in some circumstances, of incorporating some form of field stop between the two optical waveguide diffraction gratings of a tandem pair. If the optical waveguide diffraction gratings 20 and 21 of
The method of constructing a multiplexer/demultiplexer device embodying the invention in a preferred form uses a known form of processing to create the required configuration of optical waveguides in an integrated waveguide optics structure. Successive stages of this processing are schematically illustrated in
Whereas
At that end of grating 21 that abuts coupling region 22 the six waveguides of the grating are on a pitch of 8 μm, and are oriented to form the image plane 25 (first illustrated in
The effect of the field stop can be seen in FIG. 8. Trace 80 is a plot of the wavelength characteristic of a single diffraction grating demultiplexer as described with reference to FIG. 1. Trace 81 is the corresponding plot that was obtained in respect of a tandem diffraction grating demultiplexer as described with reference to
Thompson, George Horace Brooke
Patent | Priority | Assignee | Title |
7590032, | Nov 19 2003 | Panasonic Corporation | Recording medium, access apparatus, access method, and program |
7848182, | Nov 19 2003 | Panasonic Corporation | Recording medium, access apparatus, access method, and program |
Patent | Priority | Assignee | Title |
4508422, | Mar 03 1982 | PHAROS AB, A SWEDEN CORP | Optical scanning system |
5414548, | Sep 29 1992 | Nippon Telegraph and Telephone Corporation | Arrayed-wave guide grating multi/demultiplexer with loop-back optical paths |
5450512, | Apr 12 1993 | Matsushita Electric Industrial Co., Ltd. | Optical tap |
5748811, | Sep 14 1995 | Rembrandt Communications, LP | Optical switch |
5832362, | Feb 13 1997 | The Procter & Gamble Company; Procter & Gamble Company, The | Apparatus for generating parallel radiation for curing photosensitive resin |
EP254453, | |||
EP365125, | |||
EP591042, | |||
EP826989, | |||
GB2222891, | |||
WO9804944, |
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