INTEGRATED OPTICAL CIRCULATOR APPARATUS, METHOD, AND APPLICATIONS
20170365983 · 2017-12-21
Assignee
Inventors
- Demetrios Christodoulides (Orlando, FL, US)
- Patrick L. LiKamWa (Orlando, FL, US)
- Parinaz Aleahmad (Orlando, FL, US)
- Ramy El-Ganainy (Orlando, FL, US)
Cpc classification
H01S5/026
ELECTRICITY
H01S5/34326
ELECTRICITY
G02B6/2746
PHYSICS
H01S5/5027
ELECTRICITY
International classification
H01S5/343
ELECTRICITY
H01S5/026
ELECTRICITY
H01S5/30
ELECTRICITY
H01S5/10
ELECTRICITY
H01S5/50
ELECTRICITY
Abstract
An optical circulator is a device that routes optical pulses from port to port in a predetermined manner, e.g. in a 3-port optical circulator, optical pulses entering port 1 are routed out of port 2, while optical pulses entering port 2 exit out of port 3 and optical pulses fed into port 3 exit out of port 3. Currently such an optical circulator is made of discrete components such as magnetooptic garnets, rare-earth magnets and optical polarizers that are packaged together with fiber optic elements. Disclosed herein is a different kind of optical circulator that is monolithically integrated on a single semiconductor substrate and that is applicable for the routing of optical pulses. The embodied invention will enable photonic integrated circuits to incorporate on-chip optical circulator functionality thereby allowing much more complex optical designs to be implemented monolithically.
Claims
1. An optical circulator, comprising a semiconductor substrate; a plurality of monolithlically-integrated input/output optical waveguides disposed in the substrate; a respective plurality of optical gain regions in the input/output optical waveguides; a respective plurality of non-Hermitian coupled waveguide regions disposed in the substrate optically coupled to respective ones of the input/output optical waveguides; a respective plurality of passive optical waveguides interconnecting the plurality of input/output waveguides disposed in the substrate; and a respective plurality of beam dumps.
2. The optical circulator of claim 1, comprising an n×n input/output ports optical circulator, where n is equal to or greater than 2.
3. The optical circulator of claim 1, wherein each of the optical gain regions is a semiconductor optical amplifier (SOA).
4. The optical circulator of claim 1, wherein each consecutive input/output port is oriented parallel to its preceding port.
5. The optical circulator of claim 1, wherein the optical waveguides are monomode ridge waveguides.
6. The optical circulator of claim 1, wherein the semiconductor substrate is InP.
7. The optical circulator of claim 6, wherein the optical gain regions comprise an undoped InGaAsP multiple quantum well (MQW) core layer sandwiched between a p-doped InP cladding layer on the top and an n-doped InP cladding layer on the bottom disposed on the InP substrate, a conductive contact stripe disposed over the p-doped InP cladding layer, and a cathode contact layer disposed on the back of the substrate.
8. The optical circulator of claim 7, wherein the MQW regions of the passive optical waveguides have a higher bandgap energy than the MQW regions of other waveguide regions such that the passive optical waveguides are characterized by a low loss propagation.
9. The optical circulator of claim 1, wherein the non-Hermitian coupled waveguide regions comprise two parallelly disposed waveguides separated by a gap, characterized in that for a below threshold optical intensity signal the coupled waveguide region acts as a cross coupler, whereas for an above threshold optical intensity signal the coupled waveguide region behaves as a straight-through connector.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF NON-LIMITING, EXEMPLARY EMBODIMENTS
[0021] A 4-port optical circulator is configured using four (4) all-optical switches and four semiconductor optical amplifiers all monolithically integrated on a single semiconductor substrate. The design incorporates a single multilayered structure of hetero-semiconductor materials including multiple quantum wells (MQW) core region.
[0022] A schematic diagram of an integrated 4-port photonic circulator is shown in
[0023]
[0024]
[0025] The passive optical waveguides 3 (
[0026] The operation of the device is as follows. A pulsed optical signal entering port A is amplified by the SOA.sub.A. Due to the high intensity of the pulse it passes straight-through the first all-optical switch AOS.sub.A and is attenuated to a low intensity signal. The low intensity optical signal passes through the second all-optical switch AOS.sub.B and is cross-routed to port B after being amplified to the initial input power level by SOA.sub.B. Any remnants of the input signal that is routed to AOS.sub.D is of low intensity and therefore is cross-routed to the dump port of AOS.sub.D where the signal is completely attenuated and no signal appears at port D.
[0027] Similarly, optical pulse signals entering port B are amplified by SOA.sub.B, and as high intensity pulses pass straight-through the all-optical switch AOS.sub.B where they are attenuated and become low intensity signals. The low intensity optical signals passing through the all-optical switch AOS.sub.C are cross routed to output port C after being amplified to the initial input power levels by SOA.sub.C. Any remnants of the input signals that are routed to AOS.sub.A are of low intensity and therefore are cross-routed to the dump port of AOS.sub.A and no signal appears at port A.
[0028] Likewise, optical pulse signals entering port C are amplified by SOA.sub.C and pass straight through the all-optical switch AOS.sub.C and become low intensity signals that are cross-routed through the all-optical switch AOS.sub.D to output port D after being amplified to the initial input power levels by SOA.sub.D. Any remnants of the input signals that are routed to AOS.sub.B are of low intensity and therefore are cross-routed to the dump port of AOS.sub.B and no signal appears at port B.
[0029] Likewise, optical pulse signals entering port D are amplified by SOA.sub.D and pass straight through the all-optical switch AOS.sub.D and become low intensity signals that are cross-routed through the all-optical switch AOS.sub.A to output port A after being amplified to the initial input power levels by SOA.sub.A. Any remnants of the input signals that are routed to AOS.sub.C are of low intensity and therefore are cross-routed to the dump port of AOS.sub.C and no signal appears at port C.
[0030] With reference to
[0031] The optical pulse is then subjected to two successive total internal reflections in order to reach a second non-Hermitian, nonlinear directional coupler—identical to that previously encountered. In this second lossy segment, where the pulse is already weak, no change in the refractive index is induced; therefore, the wave will cross-over and hence exit from port 2 after being amplified so as to compensate for all the losses suffered during propagation in this unidirectional circulator structure. Similarly, a pulse from port 2 will reach port 3, and so on. The various fabricated sections of this device are shown in
[0032]
[0033] In the embodied system, p-type contact metals consisting of Ti, Zn and Au were deposited on top of the waveguides so as to operate as semiconductor optical amplifiers (SOAs), thus providing the necessary gain in the gain regions of
[0034] All references, including publications, patent applications, and patents, cited herein are hereby incorporated by reference to the same extent as if each reference were individually and specifically indicated to be incorporated by reference and were set forth in its entirety herein.
[0035] The use of the terms “a” and “an” and “the” and similar referents in the context of describing the invention (especially in the context of the following claims) are to be construed to cover both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context. The terms “comprising,” “having,” “including,” and “containing” are to be construed as open-ended terms (i.e., meaning “including, but not limited to,”) unless otherwise noted. The term “connected” is to be construed as partly or wholly contained within, attached to, or joined together, even if there is something intervening.
[0036] The recitation of ranges of values herein are merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, unless otherwise indicated herein, and each separate value is incorporated into the specification as if it were individually recited herein.
[0037] All methods described herein can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context. The use of any and all examples, or exemplary language (e.g., “such as”) provided herein, is intended merely to better illuminate embodiments of the invention and does not impose a limitation on the scope of the invention unless otherwise claimed.