On-chip optical polarization controller

US10133097B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10133097-B2
Application numberUS-201715718350-A
CountryUS
Kind codeB2
Filing dateSep 28, 2017
Priority dateFeb 25, 2013
Publication dateNov 20, 2018
Grant dateNov 20, 2018

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

An example optical polarization controller can include a substantially planar substrate and a waveguide unit cell formed on the substantially planar substrate. The waveguide unit cell can include a first out-of-plane waveguide portion and a second out-of-plane waveguide portion coupled to the first out-of-plane waveguide portion. Each of the first and second out-of-plane waveguide portions can respectively include a core material layer arranged between a first optical cladding layer having a first stress-response property and a second optical cladding layer having a second stress-response property. The first and second stress-response properties can be different such that each of the first and second out-of-plane waveguide portions is deflected by a deflection angle.

First claim

Opening claim text (preview).

What is claimed: 1. An optical polarization controller, comprising: a substantially planar substrate; and a waveguide unit cell formed on the substantially planar substrate, the waveguide unit cell comprising: a first out-of-plane waveguide portion, and a second out-of-plane waveguide portion coupled to the first out-of-plane waveguide portion, wherein each of the first and second out-of-plane waveguide portions respectively includes a core material layer arranged between a first optical cladding layer having a first stress-response property and a second optical cladding layer having a second stress-response property that is different than the first stress-response property such that each of the first and second out-of-plane waveguide portions is deflected by a deflection angle, and wherein the first out-of-plane waveguide portion or the second out-of-plane waveguide portion forms a bend in a direction that is different than a direction of deflection. 2. The optical polarization controller of claim 1 , wherein at least one of the first out-of-plane waveguide portion or the second out-of-plane waveguide portion is deflected toward or away from the substantially planar substrate. 3. The optical polarization controller of claim 1 , wherein an angle of optical polarization rotation between input and output light is a function of the deflection angle. 4. The optical polarization controller of claim 1 , further comprising a plurality of waveguide unit cells coupled in series and formed on the substantially planar substrate, wherein an angle of optical polarization rotation between input and output light is a function of a number of the waveguide unit cells and the deflection angle. 5. The optical polarization controller of claim 4 , further comprising one or more in-plane waveguide portions, wherein each respective in-plane waveguide portion is connected between two waveguide unit cells. 6. The optical polarization controller of claim 1 , wherein the deflection angle of at least one of the first out-of-plane waveguide portion or the second out-of-plane waveguide portion is configured to be adjustable in response to at least one of an electrical, mechanical, thermal, or optical excitation. 7. The optical polarization controller of claim 1 , wherein: the core material layer is formed from at least one of a semiconductor, a polymer, an amorphous glass, crystal, or a chalcogenide, or the first optical cladding layer is formed from at least one of PECVD SiO 2 or BOX SiO 2 , or the second optical cladding layer is formed from at least one of PECVD SiO 2 or BOX SiO 2 . 8. An photonic integrated circuit (PIC) chip, comprising: a substantially planar substrate; electronic and photonic circuitry formed on the substantially planar substrate; and the optical polarization controller of claim 1 formed on the substantially planar substrate and electrically and photonically coupled to the electronic and photonic circuitry. 9. The PIC chip of claim 8 , wherein the electronic and photonic circuitry is based on CMOS circuitry. 10. An optical polarization controller, comprising: a substantially planar substrate; a bus waveguide formed on the substantially planar substrate; a microring waveguide formed on the substantially planar substrate, the microring waveguide being optically coupled to the bus waveguide, and the microring waveguide including an out-of-plane waveguide portion having a core material layer arranged between a first optical cladding layer having a first stress-response property and a second optical cladding layer having a second stress-response property that is different than the first stress-response property such that the out-of-plane waveguide portion is deflected by a deflection angle, wherein the out-of-plane waveguide portion forms a bend in a direction that is different than a direction of deflection; and a coupling controller that is configured to adjust an amount of optical coupling between the bus waveguide and the microring waveguide. 11. The optical polarization controller of claim 10 , wherein the out-of-plane waveguide portion further includes: a first out-of-plane waveguide portion; and a second out-of-plane waveguide portion coupled to the first out-of-plane waveguide portion, wherein each of the first and second out-of-plane waveguide portions respectively includes a core material layer arranged between a first optical cladding layer having a first stress-response property and a second optical cladding layer having a second stress-response property that is different than the first stress-response property such that each of the first and second out-of-plane waveguide portions is deflected by a deflection angle, wherein the first out-of-plane waveguide portion or the second out-of-plane waveguide portion forms a bend in a direction that is different than a direction of deflection. 12. The optical polarization controller of claim 11 , wherein at least one of the first out-of-plane waveguide portion or the second out-of-plane waveguide portion is deflected toward or away from the substantially planar substrate. 13. The optical polarization controller of claim 11 , wherein the microring waveguide further includes an in-plane waveguide portion connected between terminal ends of the out-of-plane waveguide portion. 14. The optical polarization controller of claim 10 , wherein an angle of optical polarization rotation between input and output light is a function of the coupling between the bus waveguide and the microring waveguide. 15. The optical polarization controller of claim 10 , wherein an angle of optical polarization rotation between input and output light is a function of an effective path length of the microring waveguide. 16. The optical polarization controller of claim 10 , wherein the coupling controller is configured to adjust the amount of optical coupling between the bus waveguide and the microring waveguide by at least one of an electrical, mechanical, thermal, or optical excitation. 17. The optical polarization controller of claim 16 , wherein the coupling controller is controlled by a micro-heater that is configured to adjust the amount of optical coupling between the bus waveguide and the microring waveguide by adjusting a temperature of the bus waveguide, the temperature of the bus waveguide being related to a refractive index of the bus waveguide. 18. The optical polarization controller of claim 16 , wherein the coupling controller is controlled by at least one of a PIN junction, a PN junction, or a MOS capacitor that is configured to adjust the amount of optical coupling between the bus waveguide and the microring waveguide by carrier injection, depletion or accumulation, an amount of carriers being related to a refractive index and absorption of the bus waveguide. 19. The optical polarization controller of claim 10 , wherein: the core material layer is formed from at least one of a semiconductor, a polymer, an amorphous glass, crystal, or a chalcogenide, or the first optical cladding layer is formed from at least one of PECVD SiO 2 or BOX SiO 2 , or the second optical cladding layer is formed from at least one of PECVD SiO 2 or BOX SiO 2 . 20. An photonic integrated circuit (PIC) chip, comprising: a substantially planar substrate; electronic and photonic circuitry formed on the substantially planar substrate; and an optical polarization controller of claim 10 formed on the substantially planar substrate and electrically and photonically coupled to the electronic and ph

Assignees

Inventors

Classifications

  • by etching · CPC title

  • integrated waveguide · CPC title

  • Rotating, tilting or pivoting the waveguides, or with the waveguides describing a curved path (rotary joint G02B6/3628) · CPC title

  • semiconductor · CPC title

  • in an optical waveguide structure (G02F1/017, {G02F1/2257} take precedence) · CPC title

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What does patent US10133097B2 cover?
An example optical polarization controller can include a substantially planar substrate and a waveguide unit cell formed on the substantially planar substrate. The waveguide unit cell can include a first out-of-plane waveguide portion and a second out-of-plane waveguide portion coupled to the first out-of-plane waveguide portion. Each of the first and second out-of-plane waveguide portions can …
Who is the assignee on this patent?
Ohio State Innovation Foundation
What technology area does this patent fall under?
Primary CPC classification G02F1/0136. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Nov 20 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).