IP Library Granted Patent US 12,452,030
Granted Patent B2
US 12,452,030 · App. 18/547,259 · Granted Oct 21, 2025

Clock synchronization based on temporal photon bunching effect

Inventors: Jianwei Lee (Singapore, SG); Lijiong Shen (Singapore, SG); Peng Kian Tan (Singapore, SG); Christian Kurtsiefer (Singapore, SG)
Assignee: NATIONAL UNIVERSITY OF SINGAPORE
H04L7/0075
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Quick Facts
Patent No.
US 12,452,030
App. No.
18/547,259
Granted
Oct 21, 2025
Kind
B2
Abstract

A method of clock synchronization between first and second clocks on first and second ends, respectively, of an optical channel; and a system for clock synchronization between first and second clocks on first and second ends, respectively, of an optical channel. The method comprises the steps of generating light exhibiting thermal photon statistics, as opposed to a Poissonian timing statistic of coherent laser light; transmitting a portion of the light though the optical channel; determining timing information of single photon detection events of photons of the light at the first side of the optical channel using the first clock and at the second side of the optical channel using the second clock; using a temporal signature imprinted on the light as a result of the thermal photon statistics to identify temporal correlations between the single photon detection events at the first side of the optical channel and the single photon detection events at the second side of the optical channel; and determining an offset between the first and second clocks based on the identified temporal correlations.

Claims (52)

1. A method of clock synchronization between first and second clocks on first and second ends, respectively, of an optical channel, the method comprising the steps of:

generating light exhibiting thermal photon statistics, as opposed to a Poissonian timing statistic of coherent laser light;

transmitting a portion of the light through the optical channel;

determining timing information of single photon detection events of photons of the light at the first side of the optical channel using the first clock and at the second side of the optical channel using the second clock;

using a temporal signature imprinted on the light as a result of the thermal photon statistics to identify temporal correlations between the single photon detection events at the first side of the optical channel and the single photon detection events at the second side of the optical channel; and

determining an offset between the first and second clocks based on the identified temporal correlations.

2. The method of claim 1 , comprising polarizing the light to increase photon bunching in the light for increasing the temporal signature.

3. The method of claim 1 , comprising bandpass filtering to increase photon bunching in the light for increasing the temporal signature.

4. The method of claim 1 , wherein generating the light comprises using a light source disposed on the first side of the optical channel, and optionally

wherein determining the timing information of single photon detection events at the first side of the optical channel comprises:

using a first detector configured for detecting photons of a first portion of the light not having been transmitted through the optical channel; and

using a second detector configured for detecting photons of a second portion of the light having been transmitted twice through the optical channel;

wherein determining the timing information of single photon detection events at the second side of the optical channel comprises using a third detector configured for detecting photons of a third portion of the light, the third portion of the light having been transmitted once through the optical channel.

5. The method of claim 4 , wherein identifying the temporal correlations comprises generating a first histogram of the time differences between the single photon detection events in the first and second detectors; and generating a second histogram of the time differences between the single photon detection events in the first and third detectors, and optionally wherein determining the offset between the first and second clocks comprises identifying first and second peaks in the first and second histograms, respectively.

6. The method of claim 4 , wherein generating the light comprises using the first light source disposed on the first side of the optical channel and using a second light source disposed on the second side of the optical channel, and optionally

wherein determining the timing information of single photon detection events at the first side of the optical channel comprises:

using a first detector configured for detecting photons of a first portion of the light generated using the first light source not having been transmitted through the optical channel; and

using a second detector configured for detecting photons of a first portion of the light generated using the second light source having been transmitted once through the optical channel;

wherein determining the timing information of single photon detection events at the second side of the optical channel comprises:

using a third detector configured for detecting photons of a second portion of the light generated using the first light source having been transmitted once through the optical channel; and

using a fourth detector configured for detecting photons of a second portion of the light generated using the second light source not having been transmitted through the optical channel.

7. The method of claim 6 , wherein identifying the temporal correlations comprises generating a first histogram of the time differences between the single photon detection events in the first and third detectors; and generating a second histogram of the time differences between the single photon detection events in the second and fourth detectors, and optionally wherein determining the offset between the first and second clocks comprises identifying first and second peaks in the first and second histograms, respectively.

8. The method of claim 6 , wherein determining the timing information of single photon detection events at the first side of the optical channel comprises:

using a first detector configured for detecting photons of a first portion of the light generated using the first light source not having been transmitted through the optical channel and for detecting photons of a first portion of the light generated using the second light source having been transmitted once through the optical channel;

and wherein determining the timing information of single photon detection events at the second side of the optical channel comprises:

using a second detector configured for detecting photons of a second portion of the light generated using the first light source having been transmitted once through the optical channel and for detecting photons of a second portion of the light generated using the second light source not having been transmitted through the optical channel.

9. The method of claim 8 , wherein identifying the temporal correlations comprises generating a histogram of the time differences between sets of the single photon detection events in the first and second detectors, and optionally wherein determining the offset between the first and second clocks comprises identifying a midpoint between first and second peaks in the histogram.

10. A system for clock synchronization between first and second clocks on first and second ends, respectively, of an optical channel, the system comprising:

a light source for generating light exhibiting thermal photon statistics, as opposed to a Poissonian timing statistic of coherent laser light;

a transmitter for transmitting a portion of the light through the optical channel; and

a processor for:

determining timing information of single photon detection events of photons of the light at the first side of the optical channel using the first clock and at the second side of the optical channel using the second clock;

using a temporal signature imprinted on the light as a result of the thermal photon statistics to identify temporal correlations between the single photon detection events at the first side of the optical channel and the single photon detection events at the second side of the optical channel; and

determining an offset between the first and second clocks based on the identified temporal correlations.

11. The system of claim 10 , comprising a polarizer for polarizing the light to increase photon bunching in the light for increasing the temporal signature.

12. The system of 10 , comprising a filter for bandpass filtering to increase photon bunching in the light for increasing the temporal signature.

13. The system of claim 10 , wherein the light source is disposed on the first side of the optical channel, and optionally comprising:

a first detector configured for detecting photons of a first portion of the light not having been transmitted through the optical channel; and a second detector configured for detecting photons of a second portion of the light having been transmitted twice through the optical channel; and

a third detector configured for detecting photons of a third portion of the light, the third portion of the light having been transmitted once through the optical channel.

14. The system of claim 13 , wherein the processor, for identifying the temporal correlations, is configured for generating a first histogram of the time differences between the single photon detection events in the first and second detectors; and for generating a second histogram of the time differences between the single photon detection events in the first and third detectors.

15. The system of claim 14 , wherein the processor, for determining the offset between the first and second clocks, is configured for identifying first and second peaks in the first and second histograms, respectively.

16. The system of claim 13 , comprising the first light source disposed on the first side of the optical channel and a second light source disposed on the second side of the optical channel, and optionally comprising:

a first detector configured for detecting photons of a first portion of the light generated using the first light source not having been transmitted through the optical channel;

a second detector configured for detecting photons of a first portion of the light generated using the second light source having been transmitted once through the optical channel;

a third detector configured for detecting photons of a second portion of the light generated using the first light source having been transmitted once through the optical channel; and

a fourth detector configured for detecting photons of a second portion of the light generated using the second light source not having been transmitted through the optical channel.

17. The system of claim 16 , comprising:

a first detector configured for detecting photons of a first portion of the light generated using the first light source not having been transmitted through the optical channel and for detecting photons of a first portion of the light generated using the second light source having been transmitted once through the optical channel; and

a second detector configured for detecting photons of a second portion of the light generated using the first light source having been transmitted once through the optical channel and for detecting photons of a second portion of the light generated using the second light source not having been transmitted through the optical channel.

18. The system of claim 17 , wherein the processor, for identifying the temporal correlations, is configured for generating a histogram of the time differences between sets of the single photon detection events in the first and second detectors.

19. The system of claim 18 , wherein the processor, for determining the offset between the first and second clocks, is configured for identifying a midpoint between first and second peaks in the histogram.

20. The system of claim 10 , wherein the processor, for identifying the temporal correlations, is configured for generating a first histogram of the time differences between the single photon detection events in the first and third detectors; and generating a second histogram of the time differences between the single photon detection events in the second and fourth detectors, and optionally wherein the processor, for determining the offset between the first and second clocks, is configured for identifying first and second peaks in the first and second histograms, respectively.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2023
From: LEE, JIAN WEI; SHEN, LIJIONG; TAN, PENG KIAN; KURTSIEFER, CHRISTIAN
To: NATIONAL UNIVERSITY OF SINGAPORE
Reel/Frame 064651/0779 →
Priority Claims (1)
SG 10202101741W · Feb 22, 2021 · national
Continuity (1)
Related Publication 20240022391A1 · Jan 18, 2024
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