IP Library › Granted Patent US 12,276,543
Granted Patent B2
US 12,276,543 · App. 17/900,419 · Granted Apr 15, 2025

Readout circuits for amplitude modulating sensors

Inventors: David Alan Mills (Gainesville, FL); William C. Patterson (Gainesville, FL)
Assignee: INTERDISCIPLINARY CONSULTING CORPORATION
G01J1/0437G01J1/4228G01J1/44G01J2001/4242
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Quick Facts
Patent No.
US 12,276,543
App. No.
17/900,419
Granted
Apr 15, 2025
Kind
B2
Abstract

A readout circuit for an amplitude modulating sensor includes a first and second wavelength light source; an optical coupler coupled to receive a first light signal from the first wavelength light source and a second light signal from the second wavelength light source; a frequency selector that allows for the first light signal to pass to the amplitude modulating sensor; and a detector system coupled to the optical coupler to receive the first light signal and the second light signal after the first light signal is modulated by the amplitude modulating sensor and independently detect the two signals. The detector system generates electronic signals representing the modulated first light signal and the second light signal and removes a common mode signal of the modulated first light signal and the second light signal, removing common mode noise or attenuation in the modulated first light signal.

Claims (51)

1. A readout circuit for an amplitude modulating sensor comprising:

a first wavelength light source;

a second wavelength light source;

an optical coupler coupled to receive both a first light signal from the first wavelength light source and a second light signal from the second wavelength light source;

a frequency selector that allows for the first light signal to pass from the optical coupler to the amplitude modulating sensor; and

a detector system coupled to the optical coupler to receive the first light signal and the second light signal after the first light signal is modulated by the amplitude modulating sensor and independently detect the modulated first light signal and the second light signal, wherein the detector system generates electronic signals representing the modulated first light signal and the second light signal and removes a common mode signal of the modulated first light signal and the second light signal, removing common mode noise or attenuation in the modulated first light signal.

2. The readout circuit of claim 1 , wherein the first wavelength light source and the second wavelength light source are driven by a direct current source.

3. The readout circuit of claim 2 , wherein the detector system comprises:

two photodetectors, each of the two photodetectors corresponding to a respective wavelength of the first light signal and the second light signal; and

a comparator coupled to an output of the two photodetectors for removing the common mode signal.

4. The readout circuit of claim 1 , wherein the first wavelength light source and the second wavelength light source are driven by an alternating current source.

5. The readout circuit of claim 4 , wherein the detector system comprises:

one photodetector;

an electronic splitting circuit splitting the electronic signals representing the modulated first light signal and the second light signal; and

a comparator coupled to an output of the electronic splitting circuit for removing the common mode signal.

6. The readout circuit of claim 1 , further comprising a clock timing circuit.

7. The readout circuit of claim 6 , wherein the first wavelength light source and the second wavelength light source are driven by opposite clock signals from the clock timing circuit.

8. The readout circuit of claim 7 , wherein the detector system comprises:

a single photodiode;

a first filter;

a second filter;

a switch controlled by the clock timing circuit to direct an output of the single photodiode between the first filter and the second filter; and

a comparator coupled to the first filter and the second filter for removing the common mode signal.

9. The readout circuit of claim 1 , wherein the frequency selector is a mirror.

10. The readout circuit of claim 1 , wherein the frequency selector is a beam splitter.

11. The readout circuit of claim 1 , further comprising a feedback circuit coupled to receive the first light signal and the second light signal from the optical coupler and feed back a signal to stabilize an amplitude of the first light signal and the second light signal.

12. The readout circuit of claim 11 , wherein the first wavelength light source and the second wavelength light source are driven by a direct current source, wherein the feedback circuit comprises:

a wavelength division multiplexing splitter for splitting the first light signal and the second light signal based on a respective wavelength of the first light signal and the second light signal;

a first amplifier coupled to receive the first light signal from the wavelength division multiplexing splitter;

a second amplifier coupled to receive the second light signal from the wavelength division multiplexing splitter;

a first low pass filter coupled to an output of the first amplifier; and

a second low pass filter coupled to an output of the second amplifier, wherein the first low pass filter and the second low pass filter output respective signals for stabilizing the amplitude of the first light signal and the second light signal that are output by the first wavelength light source and the second wavelength light source.

13. The readout circuit of claim 11 , wherein the first wavelength light source and the second wavelength light source are driven by an alternating current source, wherein the feedback circuit comprises:

a single photodiode that receives the first light signal and the second light signal from the optical coupler;

a stabilizer coupled to receive a combined signal of the first light signal and the second light signal output from the single photodiode; and

a filtering component coupled to an output of the stabilizer,

wherein the filtering component splits the combined signal from the stabilizer and outputs respective signals for stabilizing the amplitude of the first light signal and the second light signal that are output by the first wavelength light source and the second wavelength light source.

14. The readout circuit of claim 13 , wherein the stabilizer comprises a peak detector or lock-in amplifier,

wherein the filtering component comprises:

a first multiplexer coupled to the output of the stabilizer;

a second multiplexer coupled to the output of the stabilizer;

a first filter coupled to an output of the first multiplexer; and

a second filter coupled to an output of the second multiplexer,

wherein the first filter and the second filter output respective signals for stabilizing the amplitude of the first light signal and the second light signal that are output by the first wavelength light source and the second wavelength light source.

15. The readout circuit of claim 11 , further comprising a clock timing circuit, wherein the first wavelength light source and the second wavelength light source are driven by opposite clock signals from the clock timing circuit, wherein the feedback circuit comprises:

a single photodiode;

a switch coupled to receive an output of the single photodiode;

a first filter; and

a second filter,

wherein the switch is controlled by the clock timing circuit to split the first light signal and the second light signal detected by the single photodiode between the first filter and the second filter,

wherein the first filter and the second filter output respective signals for stabilizing the amplitude of the first light signal and the second light signal that are output by the first wavelength light source and the second wavelength light source.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 7, 2022
From: MILLS, DAVID ALAN; PATTERSON, WILLIAM C.
To: INTERDISCIPLINARY CONSULTING CORPORATION
Reel/Frame 061013/0365 →
Continuity (2)
Provisional Application 63388445 · Jul 12, 2022
Related Publication 20240019296A1 · Jan 18, 2024
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