IP Library Granted Patent US 12,480,789
Granted Patent B1
US 12,480,789 · App. 19/056,155 · Granted Nov 25, 2025

Hybrid free space oscillators for ultraprecision sensor applications

Inventors: Mohamed Yehia Mohamed Shalaby (Riyadh, SA); Abdulrahman M. Shalaby (Kajang, MY)
Assignee: IMAM MOHAMMAD IBN SAUD ISLAMIC UNIVERSITY
G01D5/35329G01C9/02
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Quick Facts
Patent No.
US 12,480,789
App. No.
19/056,155
Granted
Nov 25, 2025
Kind
B1
Abstract

A free space optical oscillator system for sensing perturbations in optical signals transmitted through a free space propagation region includes a laser diode which generates intensity-modulated optical signals. A first 50/50 directional coupler connected to the laser diode injects the intensity-modulated optical signals into an optical sensing path. A free space propagation region located between a first and second collimating lens generates phase shifts in the intensity-modulated optical signals upon detecting changes in a substance located within a sensing zone of the free space propagation region. A semiconductor optical amplifier (SOA) amplifies the phase shifted intensity-modulated optical signals. A phase shift loop, connected between a second 50/50 directional coupler and the first 50/50 directional coupler, inserts a fixed phase shift into the amplified phase shifted intensity-modulated optical signals through a piezoelectric (PZT) fiber stretcher. A measurement loop converts the phase-shifted amplified intensity-modulated optical signals to electrical signals using a photodetector.

Claims (41)

1 . A free space optical oscillator system for sensing perturbations in optical signals transmitted through a free space propagation region, comprising:

a laser diode connected to a power source, wherein the laser diode is configured to generate intensity-modulated optical signals;

a first 50/50 directional coupler connected to the laser diode, wherein the first 50/50 directional coupler is configured to inject the intensity-modulated optical signals into an optical sensing path;

a first collimating lens located on the optical sensing path;

a second collimating lens located on the optical sensing path;

a free space propagation region located between the first collimating lens and the second collimating lens, wherein changes in a substance located within a sensing zone of the free space propagation region generate phase shifts in the intensity-modulated optical signals;

a semiconductor optical amplifier (SOA) connected to the second collimating lens, wherein the SOA is configured to amplify the phase shifted intensity-modulated optical signals;

a second 50/50 directional coupler connected to the SOA, wherein the second 50/50 directional coupler is configured to receive the amplified phase shifted intensity-modulated optical signals;

a fiber delay line;

a piezoelectric (PZT) fiber stretcher comprising an optical fiber wound around a piezoelectric tube and a voltage source connected to the piezoelectric tube, wherein the optical fiber is configured to increase in length based on a magnitude of a voltage applied by the voltage source to the piezoelectric tube;

a phase shift loop connected between the second 50/50 directional coupler and the first 50/50 directional coupler, wherein the phase shift loop consists of the fiber delay line connected in series with the PZT fiber stretcher, wherein the fiber delay line is directly connected between the second 50/50 directional coupler and the PZT fiber stretcher and the PZT fiber stretcher is directly connected to the fiber delay line and the first 50/50 directional coupler, wherein the PZT fiber stretcher is configured to insert a preset phase shift into the amplified phase shifted intensity-modulated optical signals due to the increase in length of the optical fiber and the fiber delay line is configured to inject a fixed phase shift into the phase shift loop;

a measurement loop connected between the second 50/50 directional coupler and the laser diode, wherein the measurement loop consists of a photodetector configured to convert the phase shifted amplified intensity-modulated optical signals to electrical signals, and an electrical amplifier, a tunable bandpass filter and a variable electrical phase shifter configured to amplify and filter the electrical signals;

a spectrum analyzer connected to the measurement loop, wherein the spectrum analyzer is configured to receive the amplified, filtered, electrical signals, generate a frequency spectrum, and determine one or more frequency shifts between the amplified, filtered, electrical signals and a reference frequency; and

a computing device connected to the spectrum analyzer, wherein the computing device includes an electrical circuitry, a memory having program instructions stored therein that, when executed by one or more processors, cause the one or more processors to:

receive the one or more frequency shifts and the frequency spectrum,

compare the one or more frequency shifts to a look-up table configured to relate the one or more frequency shifts to the phase shifts generated within the sensing zone by the changes in the substance, and

identify the changes in the substance.

2 . The free space optical oscillator system of claim 1 , wherein the amplified, filtered, electrical signals from the measurement loop are configured to modulate the power from the power source applied to the laser diode.

3 . The free space optical oscillator system of claim 2 , wherein the first 50/50 directional coupler is configured to receive the intensity-modulated optical signals from the laser diode and the phase shifted amplified intensity-modulated optical signals from the phase shift loop, combine the intensity-modulated optical signals and the phase shifted amplified intensity-modulated optical signals, and inject the combined intensity-modulated optical signals and phase shifted amplified intensity-modulated optical signals into the optical sensing path.

4 . The free space optical oscillator system of claim 3 , wherein the second 50/50 directional coupler is configured to divide the amplified intensity-modulated optical signals into a first optical stream and a second optical stream, inject the first optical stream into the phase shift loop and inject the second optical stream into the measurement loop.

5 . The free space optical oscillator system of claim 4 , wherein:

the perturbations in the free space path are due to changes in a density of a gas located in the free space propagation region of the optical sensing path; and

the computing device is configured to identify a chemical formula of the gas based on the frequency spectrum and identify the changes in the density of the gas based on the one or more frequency shifts.

6 . The free space optical oscillator system of claim 4 , wherein:

the perturbations in the free space path are due to changes in a temperature of a gas located in the free space propagation region of the optical sensing path; and

the computing device is configured to identify the changes in temperature of the gas based on the one or more frequency shifts.

7 . The free space optical oscillator system of claim 4 , further comprising:

an object located in the free space path, wherein the object has a varying thickness,

wherein the computing device is configured to identify a change in the thickness of the object based on the one or more frequency shifts.

8 . The free space optical oscillator system of claim 1 , wherein the first 50/50 directional coupler is configured to:

receive the intensity-modulated optical signals from the laser diode; and

divide the intensity-modulated optical signals into a first optical stream and a second optical stream, inject the first optical stream into the phase shift loop and inject the second optical stream into the optical sensing path.

9 . The free space optical oscillator system of claim 8 , wherein the second 50/50 directional coupler is configured to:

receive the amplified intensity-modulated optical signals from the SOA and the phase shifted amplified intensity-modulated optical signals from the phase shift loop, combine the amplified intensity-modulated optical signals and the phase shifted amplified intensity-modulated optical signals with the known phase shift into a single optical stream; and

inject the single optical stream into the measurement loop.

10 . The free space optical oscillator system of claim 9 , wherein:

the perturbations in the free space path are due to changes in a density of a gas located in the sensing zone; and

the computing device is configured to identify a chemical formula of the gas based on the frequency spectrum and identify the change in density based on the one or more frequency shifts.

11 . The free space optical oscillator system of claim 9 , further comprising:

an object located in the free space path, wherein the object has a varying tilt angle,

wherein the computing device is configured to identify the tilt of the object based on the one or more frequency shifts.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 18, 2025
From: SHALABY, MOHAMED YEHIA MOHAMED; SHALABY, ABDULRAHMAN M.
To: IMAM MOHAMMAD IBN SAUD ISLAMIC UNIVERSITY
Reel/Frame 070246/0239 →
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