IP Library Granted Patent US 12669612
Granted Patent B2
US 12669612 · App. 17/640,343 · Granted Jun 30, 2026

Photonic integrated circuit, light detection and ranging system and method for operating the same

Inventors: George Rakuljic (Santa Monica, CA); Naresh Satyan (Pasadena, CA); Yaakov Vilenchik (Jerusalem, IL); Ron Friedman (Givat Oz, IL); Daniel Grodensky (Binyamina, IL); Israel Petronius (Haifa, IL); Amnon Yariv (Pasadena, CA)
Assignee: Intel Corporation
G01S17/931G01S7/4814G02B6/12004G02B6/12007G02B2006/12107G02B2006/12138
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Quick Facts
Patent No.
US 12669612
App. No.
17/640,343
Filed
Mar 4, 2022
Granted
Jun 30, 2026
Kind
B2
Art Unit
2874
USPC
385/14
Abstract

A photonic integrated circuit, comprising a semiconductor photonic substrate having integrated therein: at least one light receiving input; at least one optical splitter to branch light received at the at least one light receiving input to a first light path and a second light path; wherein, the photonic integrated circuit, in the first light path, includes: at least one first amplifier structure to amplify the light in the first light path to provide first amplified light; at least one first light output to output the first amplified light from the at least one first amplifier structure; and at least one first photo detector to receive light from the outside of the photonic integrated circuit, the at least one first photo detector being located next to the at least one first light output; wherein, the photonic integrated circuit, in the second light path, includes: at least one second amplifier structure to amplify the light in the second light path to provide second amplified light; at least one second light output to output the second amplified light from the at least one second amplifier structure; and at least one second photo detector to receive light from the outside of the photonic integrated circuit, the at least one second photo detector being located next to the at least one second light output.

Claims (92)

1 . A photonic integrated circuit, comprising

a semiconductor photonic substrate having integrated therein:

at least one light receiving input;

at least one optical splitter to branch light received at the at least one light receiving input to a first light path and a second light path;

wherein the photonic integrated circuit, in the first light path, comprises:

at least one first amplifier structure to amplify the light in the first light path to provide first amplified light;

at least one first light output to output the first amplified light from the at least one first amplifier structure; and

at least one first photo detector to receive light from the outside of the photonic integrated circuit, the at least one first photo detector being located next to the at least one first light output;

wherein the photonic integrated circuit, in the second light path, comprises:

at least one second amplifier structure to amplify the light in the second light path to provide second amplified light;

at least one second light output to output the second amplified light from the at least one second amplifier structure; and

at least one second photo detector to receive light from the outside of the photonic integrated circuit, the at least one second photo detector being located next to the at least one second light output.

2 . The photonic integrated circuit of claim 1 , further comprising:

wherein the semiconductor photonic substrate is made of a semiconductor material.

3 . The photonic integrated circuit of claim 1 ,

wherein the at least one first light output and the at least one first photo detector are arranged on the same side of the photonic integrated circuit; and/or

wherein the at least one second light output and the at least one second photo detector are arranged on the same side of the photonic integrated circuit.

4 . The photonic integrated circuit of claim 1 ,

wherein, the photonic integrated circuit, in the first light path, comprises at least one first waveguide structure; and/or

wherein, the photonic integrated circuit, in the second light path, comprises at least one second waveguide structure.

5 . The photonic integrated circuit of claim 1 ,

wherein the photonic integrated circuit in the first light path comprises at least one optical splitter to branch light received from the at least one light receiving input to the at least one first photo detector and to the first light output; and/or

wherein the photonic integrated circuit in the second light path comprises at least one optical splitter to branch light received from the at least one light receiving input to the at least one second photo detector and to the second light output.

6 . The photonic integrated circuit of claim 1 ,

wherein the photonic integrated circuit in the first light path comprises at least one balanced photo detector pair; and/or

wherein the photonic integrated circuit in the second light path comprises at least one balanced photo detector pair.

7 . The photonic integrated circuit of claim 1 , comprising

a plurality of waveguide structures on a common semiconductor photonic substrate, and

a plurality of photo detectors on the same semiconductor photonic substrate, wherein each waveguide structure of the plurality of waveguide structures is coupled to at least one photo detector of the plurality of photo detectors, such that photo detectors coupled to different waveguide structures are addressable independently from each other.

8 . The photonic integrated circuit of claim 1 ,

wherein the at least one optical splitter is configured to branch light received at the at least one light receiving input to a plurality of light paths, wherein each light path of the plurality of light paths comprises at least one amplifier structure to amplify the light in the light path to provide an amplified light; at least one light output to output the amplified light from the photonic integrated circuit; and at least one photo detector to receive light from the outside of the photonic integrated circuit, the at least one photo detector being located next to the at least one light output.

9 . The photonic integrated circuit of claim 1 , further comprising at least one electromagnetic radiation source coupled to the at least one light receiving input and configured to emit an electromagnetic radiation of a frequency or a frequency band.

10 . The photonic integrated circuit of claim 9 ,

wherein the electromagnetic radiation source is configured to emit at least one coherent electromagnetic radiation.

11 . The photonic integrated circuit of claim 9 , further comprising at least another electromagnetic radiation source coupled to the at least one light receiving input and configured to emit another electromagnetic radiation of another frequency or another frequency band.

12 . A light detection and ranging system, comprising

a semiconductor photonic substrate having integrated therein:

at least one light receiving input;

at least one optical splitter to branch light received at the at least one light receiving input to a first light path and a second light path;

wherein the first light path comprises:

at least one first amplifier structure to amplify the light in the first light path to provide first amplified light;

at least one first light output to output the first amplified light from the at least one first amplifier structure; and

at least one first photo detector to receive light from the outside of a photonic integrated circuit, the at least one first photo detector being located next to the at least one first light output;

wherein the second light path comprises:

at least one second amplifier structure to amplify the light in the second light path to provide second amplified light;

at least one second light output to output the second amplified light from the at least one second amplifier structure; and

at least one second photo detector to receive light from the outside of the photonic integrated circuit, the at least one second photo detector being located next to the at least one second light output;

at least one electromagnetic radiation source coupled to the at least one light receiving input and configured to emit an electromagnetic radiation; and

a grating structure optically arranged to guide light from the output of the plurality of the light paths to the outside of the light detection and ranging system and from the outside of the light detection and ranging system to a plurality of optical photo detectors.

13 . The light detection and ranging system of claim 12 ,

wherein the electromagnetic radiation source is configured to be operated as a continuous wave laser and/or a pulsed laser.

14 . The light detection and ranging system of claim 12 ,

wherein the at least one electromagnetic radiation source is configured to emit electromagnetic radiation of at least a first wavelength band and a second wavelength band different from the first wavelength band.

15 . The light detection and ranging system of claim 12 ,

wherein the grating structure is a diffraction grating or a refraction grating.

16 . The light detection and ranging system of claim 12 , further comprising: a converging lens arranged in the first and second light path between the grating structure and the photonic integrated circuit.

17 . The light detection and ranging system of claim 12 , further comprising: a scan mirror in the light path between the grating structure and the outside of the light detection and ranging system.

18 . The light detection and ranging system of claim 17 , further comprising:

a quarter wave plate in the light path between the grating structure and the scan mirror.

19 . The light detection and ranging system of claim 12 , further comprising a controller configured to control the electromagnetic radiation source to:

emit a first electromagnetic radiation through the first light path of the photonic integrated circuit to the outside of the light detection and ranging system and a second electromagnetic radiation through the second light path of the photonic integrated circuit to the outside of the light detection and ranging system; and

to control a first photo detector to detect a first received electromagnetic radiation received through the first light path of the photonic integrated circuit from the outside of the light detection and ranging system and

to control a second photo detector to detect a second electromagnetic radiation through the second light path of the photonic integrated circuit from the outside of the light detection and ranging system.

20 . The light detection and ranging system of claim 19 ,

the controller further configured to determine a frequency difference between the frequency of the first electromagnetic radiation and the first received electromagnetic radiation and determine a frequency difference between the frequency of second electromagnetic radiation and the second received electromagnetic radiation.

21 . The light detection and ranging system of claim 19 ,

the controller further configured to determine a time difference between an emission timing of the first electromagnetic radiation and a detection timing of the first received electromagnetic radiation and determine a time difference between emission timing of the second electromagnetic radiation and the detection timing of the received electromagnetic radiation.

22 . The light detection and ranging system of claim 19 ,

the controller further configured to control the electromagnetic radiation source to emit the first electromagnetic radiation and the second electromagnetic radiation at the same time.

23 . The light detection and ranging system of claim 12 ,

wherein the at least one electromagnetic radiation source is configured to emit a first electromagnetic radiation of at least a first frequency or first frequency band and:

wherein the at least one electromagnetic radiation source is further configured to emit a second electromagnetic radiation of a second frequency or second frequency band, or further comprising a second electromagnetic radiation source coupled to the at least one light receiving input and configured to emit a second electromagnetic radiation of a second frequency or second frequency band;

further comprising a controller configured to control the electromagnetic radiation source(s) to:

emit the first electromagnetic radiation through the first and/or second light paths of the photonic integrated circuit to the outside of the light detection and ranging system and the second electromagnetic radiation through the first and/or second light paths of the photonic integrated circuit to the outside of the light detection and ranging system; and

configured to control the first and/or second photo detectors to detect a first and/or second received electromagnetic radiation received through the first and second light path of the photonic integrated circuit from the outside of the light detection and ranging system.

24 . A vehicle comprising a light detection and ranging system,

the light detection and ranging system comprising:

a semiconductor photonic substrate having integrated therein:

at least one light receiving input;

at least one optical splitter to branch light received at the at least one light receiving input to a first light path and a second light path;

wherein the first light path of the semiconductor photonic substrate comprises:

at least one first amplifier structure to amplify the light in the first light path to provide first amplified light;

at least one first light output to output the first amplified light from the at least one first amplifier structure; and

at least one first photo detector to receive light from the outside of a photonic integrated circuit, the at least one first photo detector being located next to the at least one first light output;

wherein the second light path of the semiconductor photonic substrate comprises:

at least one second amplifier structure to amplify the light in the second light path to provide second amplified light;

at least one second light output to output the second amplified light from the at least one second amplifier structure; and

at least one second photo detector to receive light from the outside of the photonic integrated circuit, the at least one second photo detector being located next to the at least one second light output;

at least one electromagnetic radiation source coupled to the at least one light receiving input and configured to emit an electromagnetic radiation; and

a grating structure optically arranged to guide light from the output of the plurality of the light paths to the outside of the light detection and ranging system and from the outside of the light detection and ranging system to a plurality of optical photo detectors.

25 . The vehicle of claim 24 ,

wherein the light detection and ranging system is configured for obstacle detection outside of the vehicle.