IP Library › Granted Patent US 12,632,762
Granted Patent B2
US 12,632,762 · App. 18/105,080 · Granted May 19, 2026

Method and apparatus for processing and measuring photonic qubit signals

Inventors: Min Su Kim (Daejeon, KR); In Gyoo Kim (Daejeon, KR); Ki Won Moon (Daejeon, KR); Jeong Ho Bang (Daejeon, KR); Kyung Hyun Baek (Daejeon, KR); Jung Jin Ju (Daejeon, KR)
Assignee: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
G06N10/40
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Quick Facts
Patent No.
US 12,632,762
App. No.
18/105,080
Granted
May 19, 2026
Kind
B2
Abstract

An apparatus for processing a photonic qubit signal includes a first optical unit to receive and transmit a time-modulated signal divided into two sections distinguished with respect to time and correspond to |0 and |1 states of single-photon qubit information; a second optical unit to form a first path-signal pattern by distributing the time-modulated signal into two spatial paths; a third optical unit to form a second path-signal pattern from the first path-signal pattern by inducing a relative delay and controlling a phase difference between signals on the two spatial paths; a fourth optical unit to form a third path-signal pattern through optical interference of the second path-signal pattern; and a fifth optical unit to control a phase difference between signals on the two spatial paths and form a fourth path-signal pattern through optical interference of the third path-signal pattern.

Claims (55)

1 . An apparatus for processing a photonic qubit signal, the apparatus comprising:

a first optical unit configured to receive and transmit a time-modulated signal divided into two sections which are distinguished with respect to time and correspond respectively to |0 and |1 states of single-photon qubit information;

a second optical unit configured to form a first path-signal pattern by distributing the time-modulated signal into two spatial paths;

a third optical unit configured to form a second path-signal pattern from the first path-signal pattern by inducing a relative delay with a preset time interval and controlling a phase difference between signals on the two spatial paths;

a fourth optical unit configured to form a third path-signal pattern through optical interference of the second path-signal pattern; and

a fifth optical unit configured to control a phase difference between signals on the two spatial paths and to form a fourth path-signal pattern through optical interference of the third path-signal pattern affected by a control result of the phase difference.

2 . The apparatus of claim 1 , further comprising a detection unit configured to analyze the single-photon qubit information by measuring the fourth path-signal pattern.

3 . The apparatus of claim 1 , wherein the second optical unit is implemented by using a Y branch or a directional coupler.

4 . The apparatus of claim 1 , wherein the third optical unit comprises a first optical means that induces a relative delay between signals on the two spatial paths with a preset time interval, and a second optical means that controls a phase change in a signal on at least one spatial path of the two spatial paths, and

wherein the first optical means is further configured to induce a time delay by a time interval between the two sections divided temporally in the time-modulated signal.

5 . The apparatus of claim 4 , wherein the second optical means comprises:

an optical means 2-1 configured to control a phase change in a signal on a first spatial path of the two spatial paths; and

an optical means 2-2 configured to control a phase change in a signal on a second spatial path of the two spatial paths.

6 . The apparatus of claim 1 , wherein the fourth optical unit comprises a first optical interference block in which optical interference occurs between signals on the two spatial paths in the second path-signal pattern.

7 . The apparatus of claim 1 , wherein the fifth optical unit comprises:

a third optical means that controls a phase change in a signal on at least one spatial path of the two spatial paths; and

a second optical interference block in which optical interference occurs between signals on the two spatial paths in the third path-signal pattern affected by the phase change due to the third optical means.

8 . The apparatus of claim 7 , wherein the third optical means comprises:

an optical means 3-1 configured to control a phase change in a signal on a first spatial path of the two spatial paths; and

an optical means 3-2 configured to control a phase change in a signal on a second spatial path of the two spatial paths.

9 . An apparatus for processing a photonic qubit signal, the apparatus comprising:

a first optical unit configured to receive and transmit a time-modulated signal divided into two sections which are distinguished with respect to time and correspond respectively to |0 and |1 states of single-photon qubit information;

a second optical unit configured to form a first path-signal pattern by distributing the time-modulated signal into two spatial paths;

a third optical unit configured to control a phase difference between signals on the two spatial paths within a shorter time than a time interval between the two sections in the time-modulated signal and to form a second path-signal pattern by distributing the two states of the single-photon qubit information, which is divided into each of the two sections in the time-modulated signal, into the two spatial paths respectively, through optical interference of the first path-signal pattern affected by a control result of the phase difference;

a fourth optical unit configured to form a third path-signal pattern from the second path-signal pattern by inducing a relative delay with a preset time interval in a spatial path, to which qubit information of a temporally preceding section of the two sections in the time-modulated signal is delivered, and by controlling a phase difference between signals on the two spatial paths;

a fifth optical unit configured to form a fourth path-signal pattern through optical interference of the third path-signal pattern; and

a sixth optical unit configured to control a phase difference between signals on the two spatial paths and to form a fifth path-signal pattern through optical interference of the fourth path-signal pattern affected by a control result of the phase difference.

10 . The apparatus of claim 9 , further comprising a detection unit configured to analyze the single-photon qubit information by measuring the fifth path-signal pattern.

11 . The apparatus of claim 9 , wherein the third optical unit comprises:

a first optical means that is provided to at least one spatial path of the two spatial paths and controls a phase difference between signals on the two spatial paths within a shorter time than a time interval between the two sections in the time-modulated signal; and

a first optical interference block in which optical interference occurs between signals on the two spatial paths in the first path-signal pattern affected by the phase difference control due to the first optical means.

12 . The apparatus of claim 9 , wherein the fourth optical unit comprises:

a second optical means that induces a relative delay with a preset time interval to a signal on one spatial path, of the two spatial paths, transmitting qubit information of a temporally preceding section of the two sections in the time-modulated signal, relative to a signal on the other spatial path; and

a third optical means that controls a phase change in a signal on at least one spatial path of the two spatial paths.

13 . The apparatus of claim 12 , wherein the third optical means comprises:

an optical means 3-1 configured to control a phase change in a signal on a first spatial path of the two spatial paths; and

an optical means 3-2 configured to control a phase change in a signal on a second spatial path of the two spatial paths.

14 . The apparatus of claim 9 , wherein the fifth optical unit comprises a second optical interference block in which optical interference occurs between signals on the two spatial paths in the third path-signal pattern.

15 . The apparatus of claim 9 , wherein the sixth optical unit comprises:

a fourth optical means that controls a phase change in a signal of a first spatial path of the two spatial paths; and

a third optical interference block in which optical interference occurs between signals on the two spatial paths in the fourth path-signal pattern affected by the phase change due to the fourth optical means.

16 . The apparatus of claim 15 , wherein the fourth optical means comprises:

an optical means 4-1 configured to control a phase change in a signal on a first spatial path of the two spatial paths; and

an optical means 4-2 configured to control a phase change in a signal on a second spatial path of the two spatial paths.

17 . A method for processing a photonic qubit signal, the method comprising:

receiving a time-modulated signal divided into two sections which are distinguished with respect to time and correspond respectively to |0 and |1 states of single-photon qubit information;

forming a first path-signal pattern by distributing the time-modulated signal into two spatial paths;

forming a second path-signal pattern from the first path-signal pattern by inducing a relative delay with a preset time interval and controlling a phase difference between signals on the two spatial paths;

forming a third path-signal pattern through optical interference of the second path-signal pattern; and

controlling a phase difference between signals on the two spatial paths and forming a fourth path-signal pattern through optical interference of the third path-signal pattern affected by a control result of the phase difference.

18 . The method of claim 17 , further comprising analyzing the single-photon qubit information by measuring the fourth path-signal pattern.

19 . The method of claim 17 , wherein the forming of the second path-signal pattern comprises:

controlling a phase difference between signals on the two spatial paths within a shorter time than a time interval between the two sections in the time-modulated signal;

forming a fifth path-signal pattern by distributing the two states of the single-photon qubit information, which is divided into each of the two sections in the time-modulated signal, into the two spatial paths respectively, through optical interference of the first path-signal pattern affected by a control result of the phase difference; and

forming the second path-signal pattern from the fifth path-signal pattern by inducing a relative delay with a preset time interval in a spatial path, to which qubit information of a temporally preceding section of the two sections in the time-modulated signal is delivered, and by controlling a phase difference between signals on the two spatial paths.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 3, 2023
From: KIM, MIN SU; KIM, IN GYOO; MOON, KI WON; BANG, JEONG HO; BAEK, KYUNG HYUN; JU, JUNG JIN
To: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
Reel/Frame 062578/0975 →
Priority Claims (2)
KR 10-2022-0014780 · Feb 4, 2022 · national
KR 10-2022-0159278 · Nov 24, 2022 · national
Continuity (1)
Related Publication 20230252333A1 · Aug 10, 2023
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