IP Library › Granted Patent US 12,450,033
Granted Patent B2
US 12,450,033 · App. 17/876,601 · Granted Oct 21, 2025

Photonic integrated circuit and method

Inventors: Steven Everard Filippus Kleijn (Eindhoven, NL); Antonio Bonardi (Eindhoven, NL)
Assignee: SMART Photonics Holding B.V.
G06F7/588G02B6/4206G02B6/4298
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Quick Facts
Patent No.
US 12,450,033
App. No.
17/876,601
Granted
Oct 21, 2025
Kind
B2
Abstract

A photonic integrated circuit, PIC, for use in generating a random number. The PIC comprising: light source on a substrate; a light detector on the substrate configured to, in response to receipt of light from the light source, output an electrical signal for use in generating the random number; and a light guidance system on the substrate configured to direct light from the light source to the light detector.

Claims (114)

1. A photonic integrated circuit, PIC, for use in generating a random number, comprising:

a light source on a substrate;

a light splitter configured to split light from the light source into a first portion of light and a second portion of light;

a first light detector on the substrate configured to, in response to receipt of the first portion of light, output first electrical signal for use in generating the random number;

a light guidance system on the substrate configured to direct the first portion of light to the first light detector;

a second light detector on the substrate, configured to receive the second portion of light, for monitoring the intensity of light output by the light source to detect deviation from a target intensity; and

circuitry configured to:

i) receive an electrical signal output by the second light detector;

ii) determine a magnitude of the electrical signal output by the second light detector, the magnitude indicative of the intensity of light output by the light source;

iii) determine that the intensity of light output by the light source is different from the target intensity; and

in response to iii), at least one of:

iv) adjust a current applied to the light source to adjust the intensity of light output by the light source, to reduce a difference between the intensity of light output by the light source and the target intensity; or

v) calibrate, on the basis of a difference between the intensity of light output by the light source and the target intensity, a process for generating the random number.

2. The PIC of claim 1 , wherein:

the substrate is of at least one of: a III-V semiconductor compound, or Indium Phosphide, InP.

3. The PIC of claim 1 , comprising,

a light attenuation system on the substrate configured to, between the light source and the first light detector, attenuate an intensity of light from the light source such that fluctuations in the intensity of light detected by the light detector are dominated by Poisson statistics.

4. The PIC of claim 3 , the light attenuation system configured to, between the light source and the first light detector, attenuate the intensity of light from the light source by a factor of at least 1000.

5. The PIC of claim 1 , wherein the light splitter comprises at least one of:

on the substrate, a passive light splitter;

on the substrate, a series of passive light splitters; or

on the substrate, a series of passive light splitters, each passive light splitter comprising a multimode interferometer (MMI).

6. The PIC of claim 1 , wherein the circuitry is first circuitry, and the PIC comprises second circuitry configured to:

a) receive the first electrical signal); and

b) determine, based on a property of the first electrical signal, a value for use in generating the random number.

7. The PIC of claim 1 , wherein the circuitry is first circuitry, and the PIC comprises

second circuitry configured to:

a) receive the electrical signal output by the first light detector;

b) measure a property of the electrical signal received in a) at a moment in time;

c) based on the property measured in b), determine that a magnitude of the property measured in b) is less than a threshold value; and

d) on the basis of c), determine a value for use in generating the random number.

8. The PIC of claim 1 , wherein the circuitry is first circuitry, and the PIC comprising:

second circuitry configured to:

a) receive the first electrical signal;

b) measure a property of the electrical signal received in a) at a first moment in time;

c) based on the property measured in b), determine that a magnitude of the property measured in b) is less than a threshold value; and

d) on the basis of c), determine a value for use in generating the random number, wherein the value for use in generating the random number is a first value, the second circuitry configured to:

e) measure the property of the first electrical signal received in a) at a second moment in time;

f) based on the property measured in e), determine that a magnitude of the property measured in e) is greater than the threshold value; and

g) on the basis of f), determine a second value, different from the first value, for use in generating the random number,

or

second circuitry configured to:

a) receive the first electrical signal;

b) measure a property of the electrical signal received in a) at a first moment in time;

c) based on the property measured in b), determine that a magnitude of the property measured in b) is less than a threshold value; and

d) on the basis of c), determine a value for use in generating the random number, wherein the value for use in generating the random number is a first value, the second circuitry configured to:

e) measure the property of the first electrical signal received in a) at a second moment in time;

f) based on the property measured in e), determine that a magnitude of the property measured in e) is greater than the threshold value; and

g) on the basis of f), determine a second value, different from the first value, for use in generating the random number, wherein the second value is a binary value.

9. The PIC of claim 6 wherein at least one of:

the property is electrical current; or

the second circuitry is configured to:

a) receive the first electrical signal;

b) measure a property of the electrical signal received in a) at a moment in time;

c) based on the property measured in b), determine that a magnitude of the property measured in b) is less than a threshold value; and

d) on the basis of c), determine a value for use in generating the random number, wherein the threshold value is a mean magnitude of the property of the electrical signal.

10. A method of generating a random number, comprising:

i) outputting light from a light source on a substrate;

ii) splitting light from the light source, by a light splitter, into a first portion of light for propagation to a first light detector and a second portion of light for receipt by a second light detector;

iii) guiding, by a light guidance system on the substrate, the first portion of light from the light source to the first light detector on the substrate;

iv) monitoring, by the second light detector, the intensity of light output by the light source to detect deviation from a target intensity;

v) determining a magnitude of an electrical signal output by the second light detector, based on the second portion of light, the magnitude indicative of the intensity of light output by the light source;

vi) determining, based on the magnitude, that the intensity of light output by the light source is different from the target intensity of light to be output by the light source; and

in response to vi), at least one of:

vii) adjusting a current applied to the light source to adjust the intensity of light output by the light source, to reduce a difference between the intensity of light output by the light source and the target intensity; or

viii) calibrating, on the basis of a difference between the intensity of light output by the light source and the target intensity, a process for generating the random number; and

ix) outputting, by the light detector, an electrical signal for use in generating a random number.

11. The method of claim 10 , wherein the substrate is of at least one of: a III-V compound, or Indium Phosphide, InP.

12. The method of claim 10 , comprising:

attenuating, by a light attenuation system on the substrate, and between the light source and the first light detector, an intensity of light from the light source such that fluctuations in the intensity of light detected by the light detector are dominated by Poisson statistics.

13. The method of claim 12 , the light attenuation system configured to, between the light source and the first light detector, attenuate the intensity of light from the light source by a factor of at least 1000.

14. The method of claim 13 , wherein the light splitter comprises

a series of passive light splitters.

15. The method of claim 14 , wherein each of the at least one passive light splitter is respectively multimode interferometer (MMI).

16. The method of claim 10 , comprising:

a) determining, based on a property of the first electrical signal, a value for use in generating the random number.

17. The method of claim 10 , comprising:

a) measuring a property of the first electrical signal;

b) based on the property measured in a), determining that a magnitude of the property measured in a) is less than a threshold value; and

c) on the basis of b), determining a value for use in generating the random number.

18. The method of claim 17 , wherein the moment in time is a first moment in time and the value for use in generating the random number is a first value, the method comprising:

d) measuring the property of the first electrical signal at a second moment in time;

e) based on the property measured in d), determining that a magnitude of the property measured in d) is greater than the threshold value; and

f) on the basis of e), determining a second value, different from the first value, for use in generating the random number,

or

d) measuring the property of the first electrical signal at a second moment in time;

e) based on the property measured in d), determining that a magnitude of the property measured in d) is greater than the threshold value; and

f) on the basis of e), determining a second value, different from the first value, for use in generating the random number, wherein the second value is a binary value.

19. The method of claim 16 , wherein the property is electrical current.

20. The method of claim 17 , wherein the threshold value is a mean magnitude of the property of the first electrical signal.

21. A method of manufacturing a photonic integrated circuit for use in generating a random number, comprising:

providing a substrate;

forming a light source on the substrate;

a light splitter configured to split light from the light source into a first portion of light and a second portion of light;

forming a first light detector on the substrate, the light detector configured to, in response to receipt of the first portion of light from the light source, output first electrical signal for use in generating the random number;

forming a light guidance system on the substrate configured to direct light from the light source to the light detector

forming a second light detector on the substrate, configured to receive the second portion of light, for monitoring the intensity of light output by the light source to detect deviation from a target intensity; and

providing circuitry configured to:

i) receive an electrical signal output by the second light detector;

ii) determine a magnitude of the electrical signal output by the second light detector, the magnitude indicative of the intensity of light output by the light source;

iii) determine that the intensity of light output by the light source is different from the target intensity; and

in response to iii), at least one of:

iv) adjust a current applied to the light source to adjust the intensity of light output by the light source, to reduce a difference between the intensity of light output by the light source and the target intensity; or

v) calibrate, on the basis of a difference between the intensity of light output by the light source and the target intensity, a process for generating the random number.

22. The method of claim 21 , comprising forming a light attenuation system on the substrate configured to, between the light source and the first light detector, attenuate an intensity of the first portion of light from the light source such that fluctuations in the intensity of light detected by the light detector are dominated by Poisson statistics.

23. The PIC of claim 1 , wherein the circuitry is first circuitry, and the PIC comprises second circuitry configured to:

a) receive the first electrical signal;

b) measure a property of the electrical signal received in a) at a moment in time;

c) based on the property measured in b), determine that a magnitude of the property measured in b) is less than a threshold value; and

d) on the basis of c), determine a value for use in generating the random number, wherein the value for use in generating the random number is a binary value.

24. The method of claim 10 , comprising:

a) measuring a property of the first electrical signal;

b) based on the property measured in a), determining that a magnitude of the property measured in a) is less than a threshold value; and

c) on the basis of b), determining a value for use in generating the random number, wherein the value for use in generating the random number is a binary value.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2022
From: KLEIJN, STEVEN EVERARD FILIPPUS; BONARDI, ANTONIO
To: SMART PHOTONICS HOLDING B.V.
Reel/Frame 060664/0698 →
Priority Claims (1)
GB 2001402 · Jan 31, 2020 · national
Continuity (2)
Continuation PCTEP2021052192 · Jan 29, 2021
Related Publication 20220391174A1 · Dec 8, 2022
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