IP Library Granted Patent US 11,346,923
Granted Patent B1
US 11,346,923 · App. 17/145,951 · Granted May 31, 2022

LiDAR system implementing wavelength conversion

Inventors: Hamed Pourbeyram Kaleibar (Bayside, NY); Paul Francis McManamon (Dayton, OH); Yu-Hsiang Cheng (Basking Ridge, NJ); Michael Etienne (West Babylon, NY); Ohad Harlev (Closter, NJ)
Assignee: LYTELOOP TECHNOLOGIES, LLC
G01S7/481G02F1/3551G02F1/3558G02F2202/20G02F2203/07G02F2203/11
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Quick Facts
Patent No.
US 11,346,923
App. No.
17/145,951
Granted
May 31, 2022
Kind
B1
Abstract

A wavelength converter for LiDAR systems, such as automotive LiDAR, is disclosed. Implementation of the wavelength converter in LiDAR systems makes possible generation and modulation of laser light in the silicon response region, conversion of the laser light to an eye-safe wavelength for emission and reflection from a target, and efficient conversion of the wavelength of the laser light to the silicon response region. The wavelength converter may implement a single-loop counter-propagating wavelength conversion scheme which provides both up-conversion and down-conversion of the signal within the same loop. The wavelength conversion design also has the potential for vehicle-to-vehicle (V2V) communication to enable a combined LiDAR and V2V communication system.

Claims (32)

1. A LiDAR system, comprising:

an emitter that emits laser light having a first wavelength;

a wavelength converter that converts the emitted laser light from the first wavelength to a second wavelength before the laser light is transmitted toward the target and, after reflected laser light is received from the target, converts the reflected laser light from the second wavelength to the first wavelength; and

a detector that receives the reflected laser light having the first wavelength from the wavelength converter;

wherein:

the emitted laser light comprises a first polarization component and a second polarization component, wherein both the first polarization component and the second polarization component have the first wavelength;

the first wavelength-conversion medium converts the first wavelength of the first polarization component to the second wavelength; and

the second wavelength-conversion medium converts the first wavelength of the second polarization component to the second wavelength.

2. A LiDAR system, comprising:

an emitter that emits laser light having a first wavelength;

a wavelength converter that converts the emitted laser light from the first wavelength to a second wavelength before the laser light is transmitted toward the target and, after reflected laser light is received from the target, converts the reflected laser light from the second wavelength to the first wavelength; and

a detector that receives the reflected laser light having the first wavelength from the wavelength converter;

wherein:

the reflected laser light comprises a first polarization component and a second polarization component, wherein both the first polarization component and the second polarization component have the second wavelength;

the first wavelength-conversion medium converts the second wavelength of the first polarization component to the first wavelength; and

the second wavelength-conversion medium converts the second wavelength of the second polarization component to the first wavelength.

3. A LiDAR system, comprising:

an emitter that emits laser light having a first wavelength;

a wavelength converter that converts the emitted laser light from the first wavelength to a second wavelength before the laser light is transmitted toward the target and, after reflected laser light is received from the target, converts the reflected laser light from the second wavelength to the first wavelength; and

a detector that receives the reflected laser light having the first wavelength from the wavelength converter;

wherein the wavelength converter comprises:

a first port;

a second port; and

a wavelength-conversion medium coupled to the first port and the second port;

wherein:

the first wavelength is received at the first port and is converted to the second wavelength by the wavelength-conversion medium and is provided to the second port; and

the second wavelength is received at the second port and is converted to the first wavelength by the wavelength-conversion medium and is provided to the first port.

4. The LiDAR system of claim 3 , wherein:

the wavelength-conversion medium converts the first wavelength to the second wavelength based on a direction that the emitted laser light travels through the wavelength-conversion medium; and

the wavelength-conversion medium converts the second wavelength to the first wavelength based on a direction that the reflected laser light travels through the wavelength-conversion medium.

5. The LiDAR system of claim 3 , wherein the wavelength-conversion medium comprises a non-linear medium.

6. The LiDAR system of claim 5 , wherein the wavelength-conversion medium comprises periodically poled lithium niobate.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 19, 2022
From: LYTELOOP TECHNOLOGIES, LLC
To: NKB PROPERTIES MANAGEMENT, LLC
Reel/Frame 062140/0756 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 7, 2021
From: KALEIBAR, HAMED POURBEYRAM; MCMANAMON, PAUL FRANCIS; CHENG, YU-HSIANG; ETIENNE, MICHAEL; HARLEV, OHAD
To: LYTELOOP TECHNOLOGIES, LLC
Reel/Frame 055847/0378 →
Continuity (1)
Provisional Application 63113363 · Nov 13, 2020