IP Library Granted Patent US 12,455,355
Granted Patent B2
US 12,455,355 · App. 17/251,749 · Granted Oct 28, 2025

Approaches, apparatuses and methods for LIDAR applications based on-mode-selective frequency conversion

Inventors: Yuping Huang (Norwood, NJ); Yong Meng Sua (Fort Lee, NJ); Amin Shahverdi (Chandler, AZ)
Assignee: The Trustees of the Stevens Institute of Technology
G01S7/484G01S7/4814G01S7/4816G01S7/4817G01S17/89G02B26/0833G02B27/30G02F1/37
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Quick Facts
Patent No.
US 12,455,355
App. No.
17/251,749
Granted
Oct 28, 2025
Kind
B2
Abstract

Approaches, apparatuses and methods for LIDAR applications based on mode-selective frequency conversion are disclosed. In one embodiment, a pulse generation unit includes a mode-locked fiber laser and optical fiber bandpass filters. In the second embodiment, a LIDAR transceiver unit based on a simple, bidirectional monostatic coaxial arrangement using off-the-shelf telecom-grade optical components includes optical fiber, fiber collimator, optical fiber circulator, optical fiber isolator and wavelength combiner. A frequency conversion detection system with single photon sensitivity includes a nonlinear optical material for frequency conversion, coupled with optimized pump pulses for efficient conversion and noise rejection, optical band pass filters for noise rejection and a single photon detection system for detecting the converted signal.

Claims (32)

1. A system comprising:

a pulse generation unit configured to create probe signals and trigger a driving pump in synchronized waveforms having pulsed amplitude and phase profiles;

a collimation and scanning unit configured to collimate the probe signals, direct the probe signals towards a target, and collect backscattered signals of the probe signals;

a timing unit configured to temporally align the driving pump with the backscattered signals of the probe signals; and

a mode selective detection unit configured to perform mode-selective frequency conversion of the collected backscattered signals and detect the converted signals.

2. The system of claim 1 , wherein the mode selective detection unit is configured to translate a frequency of the collected backscattered signals from an infrared wavelength to a visible wavelength, or from one visible wavelength to a second wavelength, to filter the translated signals and perform frequency conversion of the filtered signals, and to detect the converted signals.

3. The system of claim 2 , wherein the mode selective detection unit includes a nonlinear optical (NLO) module configured to translate the frequency of the collected backscattered signals from a near-infrared (NIR) or mid-infrared (MIR) wavelength to a visible wavelength, or from a visible wavelength to another wavelength.

4. The system of claim 3 , wherein the mode selective detection unit further includes a spectral filtering module configured to filter the translated signals and perform frequency conversion of the filtered signals.

5. The system of claim 4 , wherein the mode selective detection unit further includes a single photon detector configured to detect the converted signal.

6. The system of claim 5 , wherein the single photon detector includes a silicon avalanche photodiode (Si-APD) configured to detect the converted signals in the visible spectrum.

7. The system of claim 1 , wherein the pulse generation unit comprises a femtosecond fiber laser together with a set of wavelength division multiplexing (WDM) filters to carve out required waveforms.

8. The system of claim 1 , wherein the pulse generation unit comprises an optical frequency comb generator and a reconfigurable optical processor to create the pump waveforms, said amplitude and the phase profiles enabling optimal mode selective conversion.

9. The system of claim 1 , wherein the timing unit is configured to implement an optical delay line that can be scanned by mechanical or optical-switching means.

10. The system of claim 1 , wherein the collimation and scanning unit includes a scanning module incorporating a micro electro mechanical system (MEMS) based mirror or a digital micromirror device.

11. The system of claim 1 , further comprising a control and processing unit configured to control the operation of the pulse generation unit, the timing unit, the collimation and scanning unit, and/or the mode selective detection unit.

12. A method comprising the steps of:

creating probe signals and triggering a driving pump in synchronized waveforms having pulsed amplitude and phase profiles;

collimating the probe signals, directing the probe signals towards a target, and collecting backscattered signals of the probe signals;

temporally aligning the driving pump with the backscattered signals of the probe signals;

performing mode-selective frequency conversion of the collected backscattered signals; and

detecting the converted signals.

13. The method of claim 12 , wherein the performing step includes the steps of translating the frequency of the collected backscattered signals from a first wavelength to a second wavelength, filtering the translated signals, and performing detection of the filtered signals.

14. The method of claim 13 , wherein the frequency of the collected backscattered signal is translated from an infrared wavelength to a visible wavelength.

15. The method of claim 13 , wherein the performing step is performed using a mode selective detection unit which includes a nonlinear optical (NLO) module configured to translate the frequency of the collected backscattered signals from the first wavelength to the second wavelength.

16. The method of claim 15 , wherein the frequency of the collected backscattered signals is translated from a near-infrared (NIR) or mid-infrared (MIR) wavelength to a visible wavelength or another NIR wavelength, or from a visible wavelength to a NIR wavelength or another visible wavelength.

17. The method of claim 16 , wherein the mode selective detection unit further includes a spectral filtering module configured to filter the translated signals and perform frequency conversion and detection of the filtered signals.

18. The method of claim 17 , wherein the mode selective detection unit further includes a single photon detection unit configured to detect the converted signals.

19. The method of claim 12 , wherein the creating step is performed using a pulse generation unit including a femtosecond mode-locked fiber laser together with a set of wavelength division multiplexing (WDM) filters to carve out required waveforms.

20. The method of claim 12 , wherein the creating step is performed using a pulse generation unit including an optical frequency comb generator and a reconfigurable optical processor to create the probe signal and driving pump waveforms, said amplitude and the phase profiles having efficient optimal mode selective frequency conversion.

21. The method of claim 12 , wherein the aligning step is performed using a timing unit configured to implement an optical delay line that can be scanned by mechanical or optical switching means.

22. The method of claim 12 , wherein the collimating step is performed using a collimation and scanning unit which includes a scanning module incorporating a micro electro mechanical system (MEMS) based mirror or a digital micromirror device.

23. The method of claim 12 , wherein the creating step is performed using a pulse generating unit, the temporal aligning step is performed using a timing unit, the collimating step is performed using a collimation and scanning unit, and the performing and detecting steps are performed using a mode selective detection unit, a control and processing unit controlling the operation of the pulse generation unit, the timing unit, the collimation and scanning unit, and/or the mode selective detection unit.

Assignments (1)
CONFIRMATORY LICENSE Recorded Aug 2, 2023
From: STEVENS INSTITUTE OF TECHNOLOGY
To: U.S. GOVERNMENT AS REPRESENTED BY THE SECRETARY OF THE ARMY
Reel/Frame 064464/0889 →
Continuity (2)
Provisional Application 62684697 · Jun 13, 2018
Related Publication 20210116543A1 · Apr 22, 2021
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