Interferometer based on a tilted MMI

US9869817B1 · US · B1

Patent metadata
FieldValue
Publication numberUS-9869817-B1
Application numberUS-201615371933-A
CountryUS
Kind codeB1
Filing dateDec 7, 2016
Priority dateDec 7, 2016
Publication dateJan 16, 2018
Grant dateJan 16, 2018

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Abstract

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An optical interferometer based on multi-mode interference (MMI) devices includes an input port, an output port, a first MMI device connected to the input port at an input face of the first MMI device, a second MMI device connected to the first output port at an output face of the second MMI device. In the optical interferometer, an output face of the first MMI device and an input face of the second MMI device are directly connected, the first MMI device includes a first and a second self-imaging points at an interface between the first MMI device and the second MMI device, and a propagation axis of the second MMI device is tilted with respect to a propagation axis of the first MMI device, causing a path length difference between an upper optical path via the first self-imaging point and a lower optical path via the second self-imaging point.

First claim

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What is claimed is: 1. An optical interferometer based on multi-mode interference (MMI) devices comprising: a first input port; a first output port; a second output port; a first MMI device connected to the first input port at an input face of the first MMI device; and a second MMI device connected to the first output port and the second output port at an output face of the second MMI device; wherein an output face of the first MMI device and an input face of the second MMI device are directly connected at an interface, the first MMI device includes a first and a second self-imaging points at the interface between the first MMI device and the second MMI device, a propagation axis of the second MMI device is tilted with respect to a propagation axis of the first MMI device, causing a path length difference between an upper optical path via the first self-imaging point and a lower optical path via the second self-imaging point, and a first input light beam enters the first MMI device from the first input port and is split into first and second light beams that are modulated based on the path length difference. 2. The optical interferometer of claim 1 , wherein the first and the second light beams propagate in the first and the second MMI devices via the upper optical path and the lower optical path, respectively, the first light beam and the second light beam acquire a first phase shift and a second phase shift, respectively, the first and the second light beams are modulated by a phase shift difference between the first phase shift and the second phase shift, which is proportional to the path length difference between the upper optical path and the lower optical path, and the first and the second light beams exit the second MMI device from the first and the second output ports, respectively. 3. The optical interferometer of claim 1 , wherein the first and the second light beams propagate in the first and the second MMI devices via the upper optical path and the lower optical path, respectively, the first light beam and the second light beam acquire a first phase shift and a second phase shift, respectively, the first and the second light beams are modulated by a phase shift difference between the first phase shift and the second phase shift, which is proportional to the path length difference between the upper optical path and the lower optical path, the first light beam is discarded, and the second light beam exits the second MMI device from the second output port. 4. The optical interferometer of claim 1 , further comprising: a second input port connected to the first MMI device at the input face of the first MMI device, wherein a second input light beam enters the first MMI device from the second input port, the first and second input light beams are combined and re-split into the first and second light beams, the first and the second light beams propagate in the first and the second MMI devices via the upper optical path and the lower optical path, respectively, the first light beam and the second light beam acquire a first phase shift and a second phase shift, respectively, the first and the second light beams are modulated by a phase shift difference between the first phase shift and the second phase shift, which is proportional to the path length difference between the upper optical path and the lower optical path, and the first and the second light beams exit the second MMI device from the first and the second output ports, respectively. 5. The optical interferometer of claim 1 , further comprising: a second input port connected to the first MMI device at the input face of the first MMI device, and a third and a fourth output ports connected to the first MMI device at the output face of the first MMI device, wherein a second input light beam enters the first MMI device from the second input port, the first and second input light beams are combined and re-split into the first and second light beams that propagate to the third and fourth output ports connected to the first MMI, and also into third and fourth light beams, the third and the fourth light beams propagate in the first and the second MMI devices via the upper optical path and the lower optical path, respectively, the first light beam and the second light beam acquire a first phase shift and a second phase shift, respectively, a phase shift difference by which the second phase shift exceeds the first phase shift, which is proportional to the path length difference between the upper optical path and the lower optical path, is 45 degrees. 6. The optical interferometer of claim 1 , wherein a circular segment section of a MMI device is inserted between the first MMI device and the second MMI device, one side of the circular segment section is connected to the output face of the first MMI device, and the other side of the circular segment section is connected to the input face of the second MMI device, and the curvature of the circular segment section is substantially larger than the wavelength of the incoming light to avoid discontinuity between the first MMI device and the second MMI device. 7. The optical interferometer of claim 1 , wherein the curvature of the edges of the first MMI device and the second devices varies continuously. 8. The optical interferometer of claim 1 , wherein the second MMI device is of a non-rectangular parallelogram shape.

Assignees

Inventors

Classifications

  • G02B6/2813Primary

    based on multimode interference effect, i.e. self-imaging · CPC title

  • Self-interferometers · CPC title

  • in optical waveguides, not otherwise provided for in this subclass · CPC title

  • Bends, branchings or intersections · CPC title

  • Interferometer · CPC title

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What does patent US9869817B1 cover?
An optical interferometer based on multi-mode interference (MMI) devices includes an input port, an output port, a first MMI device connected to the input port at an input face of the first MMI device, a second MMI device connected to the first output port at an output face of the second MMI device. In the optical interferometer, an output face of the first MMI device and an input face of the s…
Who is the assignee on this patent?
Painchaud Yves, Simard Alexandre D, Ciena Corp
What technology area does this patent fall under?
Primary CPC classification G02B6/2813. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Jan 16 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).