Optical element and display apparatus

US10691005B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10691005-B2
Application numberUS-201716344240-A
CountryUS
Kind codeB2
Filing dateOct 13, 2017
Priority dateDec 7, 2016
Publication dateJun 23, 2020
Grant dateJun 23, 2020

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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.

[Object] To provide an optical element and a display apparatus capable of reducing a waveguide loss and achieving laser oscillation suppression and a high output. [Solving Means] An optical element according to the present technology includes a substrate, a first end which is a light emission end, and a second end provided on an opposite side to the first end, the optical element including a first electrode layer, a first semiconductor layer, a second semiconductor layer, an active layer, and a second electrode layer. The first electrode layer has a stripe form extended from the second end toward the first end. A waveguide structure included in the first conductivity type layer, the active layer, and second conductivity type layer includes a first waveguide and a second waveguide, and the second waveguide has a tapered structure that makes a beam spot of light incident from the first waveguide smaller. The optical element includes a reflection surface that is formed by an excavation structure provided from the first semiconductor layer to the active layer on at least one of the first end and the second end, and reflects light incident from the first waveguide or the second waveguide.

First claim

Opening claim text (preview).

The invention claimed is: 1. An optical element including a substrate, a first end which is a light emission end, and a second end on an opposite side to the first end, the optical element comprising: a first electrode layer having a stripe form, the first electrode layer being extended from the second end toward the first end; a first semiconductor layer that is a first conductivity type layer and includes a current injection area formed by the first electrode layer and a non-current injection area; a second semiconductor layer that is a second conductivity type layer and is on the substrate; an active layer that is between the first semiconductor layer and the second semiconductor layer; and a second electrode layer that is in contact with the substrate or the second semiconductor layer, wherein a waveguide structure included in the first conductivity type layer, the active layer, and the second conductivity type layer includes a first area having a first waveguide configured by the current injection area and the non-current injection area, and having a first refractive index difference as a difference between a refractive index of the current injection area and a refractive index of the non-current injection area, and a second area between the first area and the first end, the second area having a second waveguide to be extended from the first waveguide toward the first end, and having a second refractive index difference larger than the first refractive index difference as a difference between a refractive index of the second waveguide and a refractive index of an area around the second waveguide in the second area, and the second waveguide has a tapered structure that makes a beam spot of light incident from the first waveguide smaller, the optical element including a reflection surface that is formed by an excavation structure that is from the first semiconductor layer to the active layer on at least one of the first end and the second end, and reflects light incident from the first waveguide or the second waveguide. 2. The optical element according to claim 1 , wherein an optical axis of light emitted from the optical element is non-perpendicular to an end surface of the first end. 3. The optical element according to claim 1 , wherein the first waveguide has a linear form. 4. The optical element according to claim 1 , wherein the first waveguide is extended along a direction that is non-perpendicular to an end surface of the first end, the excavation structure is on the second end, and the reflection surface reflects light incident from the first waveguide toward the first waveguide. 5. The optical element according to claim 4 , wherein the end surface of the first end and an end surface of the second end are parallel to each other, and the reflection surface is configured to be perpendicular to an optical axis of light emitted from the first waveguide, and to be non-parallel to the end surface of the second end. 6. The optical element according to claim 1 , wherein the first waveguide is extended along a direction perpendicular to an end surface of the first end, the excavation structure is on the first end, and the reflection surface tilts the light incident from the second waveguide in such a manner that an optical axis is non-perpendicular to the end surface of the first end. 7. The optical element according to claim 6 , wherein the reflection surface is non-perpendicular to an optical axis of light emitted from the second waveguide, and is non-parallel to the end surface of the first end. 8. The optical element according to claim 2 , wherein the optical axis of light emitted from the optical element is tilted with respect to a perpendicular of the end surface of the first end by 3 degrees or more. 9. The optical element according to claim 1 , wherein the reflection surface is covered with a dielectric film. 10. The optical element according to claim 1 , wherein the reflection surface is covered with a metal film. 11. The optical element according to claim 1 , the optical element being a super luminescent diode. 12. A display apparatus, comprising: an optical element including a substrate, a first end which is a light emission end, and a second end on an opposite side to the first end; and an image generation unit capable of two-dimensionally scanning light emitted from the optical element, and controlling luminance caused by the light to be projected on a basis of image data, wherein the optical element includes a first electrode layer having a stripe form, the first electrode layer being extended from the second end toward the first end, a first semiconductor layer that is a first conductivity type layer and includes a current injection area formed by the first electrode layer and a non-current injection area, a second semiconductor layer that is a second conductivity type layer and is on the substrate, an active layer that is between the first semiconductor layer and the second semiconductor layer, and a second electrode layer that is in contact with the substrate or the second semiconductor layer, a waveguide structure included in the first conductivity type layer, the active layer, and the second conductivity type layer includes a first area having a first waveguide configured by the current injection area and the non-current injection area, and having a first refractive index difference as a difference between a refractive index of the current injection area and a refractive index of the non-current injection area, and a second area between the first area and the first end, the second area having a second waveguide to be extended from the first waveguide toward the first end, and having a second refractive index difference larger than the first refractive index difference as a difference between a refractive index of the second waveguide and a refractive index of an area around the second waveguide in the second area, and the second waveguide has a tapered structure that makes a beam spot of light incident from the first waveguide smaller, the optical element including a reflection surface that is formed by an excavation structure that is from the first semiconductor layer to the active layer on at least one of the first end and the second end, and reflects light incident from the first waveguide or the second waveguide.

Assignees

Inventors

Classifications

  • characterised by their shape, e.g. curved or truncated substrates · CPC title

  • H10H20/814Primary

    having reflecting means, e.g. semiconductor Bragg reflectors · CPC title

  • Superluminescent diodes · CPC title

  • Reflective coatings, e.g. dielectric Bragg reflectors · CPC title

  • of the light-emitting regions, e.g. non-planar junctions · CPC title

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What does patent US10691005B2 cover?
[Object] To provide an optical element and a display apparatus capable of reducing a waveguide loss and achieving laser oscillation suppression and a high output. [Solving Means] An optical element according to the present technology includes a substrate, a first end which is a light emission end, and a second end provided on an opposite side to the first end, the optical element including a fi…
Who is the assignee on this patent?
Sony Corp
What technology area does this patent fall under?
Primary CPC classification H10H20/814. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jun 23 2020 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 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).