IP Library Patent Application 11801843
Patent Application
App. No. 11/801,843

QKD system with dual-mode pulse generator

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Quick Facts
Patent No.
US None
App. No.
11/801,843
Abstract

A QKD system that includes a dual-mode pulse generator capable of operating as both a clock-based pulse generator and a delay-based pulse generator while minimizing the limitations of these two types of pulse generators is disclosed. When the pulse generator operates in “delay mode,” the smallest output pulse width possible corresponds to the minimum set point delay between the two delay circuits. The largest possible output pulse width corresponds to the difference between the maximum and minimum of the delay circuits. The delay mode is used to send relatively narrow optical pulses between the QKD stations to establish a quantum key. When the dual-mode pulse generator operates in “clock mode,” the output of one of the delay circuits is blocked so that the output of the gate depends solely on the output of other delay circuit. This limits the lower pulse width interval to that of the retimer clock, but allows for arbitrarily long (wide) optical pulses. The clock mode is used to send the relatively wide optical pulses between the QKD stations to calibrate the QKD system.

Claims (26)

1 . A method of operating a quantum key distribution (QKD) system having a first QKD station with a radiation source unit and a dual-mode pulse generator operably coupled thereto, and a second QKD station optically coupled to the first QKD station and having a single-photon detector (SPD) unit therein, the method comprising:

with the dual-mode pulse generator operating in a delay mode, providing narrow electrical pulses to the radiation source unit so as to cause the radiation source unit to generate corresponding narrow optical pulses (P 1 );

detecting the narrow optical pulses with the SPD unit;

with the dual-mode pulse generator operating in a clock mode, providing wide electrical pulses to the radiation source unit so as to cause the radiation source unit to generate corresponding wide optical pulses (P 2 ) that allow for performing QKD system calibration; and

detecting the second optical pulses with the SPD unit.

2 . The method of claim 1 , wherein detecting the wide optical pulses with the SPD unit is performed in connection with performing QKD system calibration.

3 . The method of claim 1 , wherein detecting the narrow optical pulses with the SPD unit is performed in connection with establishing a quantum key.

4 . The method of claim 1 , wherein the first and second QKD stations are optically coupled by an optical fiber, and wherein detecting the wide optical pulses with the SPD unit is performed in connection with measuring at least one optical fiber parameter.

5 . A QKD system comprising:

a first QKD station with a radiation source unit and a dual-mode pulse generator operably coupled to the radiation source unit, the dual-mode pulse generator configured to operate either in a delay mode or in a clock mode;

a second QKD station optically coupled to the first QKD station and having a single-photon detector (SPD) unit operably arranged therein to detect optical pulses from the first QKD station;

wherein in the delay mode, the dual-mode pulse generator generates narrow electrical pulses that cause the radiation source unit to generate corresponding narrow optical pulses (P 1 ) that are detected by the SPD unit in connection with establishing a quantum key; and

wherein in the clock mode, the dual-mode pulse generator generates wide electrical pulses that cause the radiation source unit to generate corresponding wide optical pulses (P 2 ) that are detected by the SPD unit in connection with calibrating the QKD system.

6 . The QKD system of claim 5 , wherein the dual-mode pulse generator includes:

a timing generator;

a controller operably coupled to the timing generator; and

wherein the controller is adapted to provide a mode-select control signal to the timing generator to place the dual-mode pulse generator in either the delay mode or the clock mode.

7 . The QKD system of claim 5 , wherein the QKD system includes QKD active elements, and wherein the narrow electrical pulses are used to gate one or more of the QKD active elements.

8 . The QKD system of claim 5 , wherein the QKD system includes QKD active elements, and wherein the wide electrical pulses are used to gate one or more of the QKD active elements.

9 . The QKD system of claim 5 , wherein the narrow optical pulses have a temporal width of about 500 picoseconds.

10 . The QKD system of claim 5 , wherein the wide optical pulses have a temporal width of a microsecond or greater.

11 . A method of operating a QKD system using a dual-mode pulse generator configured to operate in one of first and second operational modes, comprising:

generating narrow electrical pulses with the dual-mode pulse generator operating in the first operational mode so as to generate narrow optical pulses used to form a quantum key; and

generating wide electrical pulses with the dual-mode pulse generator operating in the second operational mode so as to generate wide optical pulses used for QKD system calibration.

12 . The method of claim 11 , wherein the QKD system includes QKD active elements, and further including using the narrow electrical pulses to gate one or more of the QKD active elements.

13 . The method of claim 11 , wherein the QKD system includes QKD active elements, and further including using the wide electrical pulses to gate one or more of the QKD active elements.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 19, 2010
From: MAGIQ TECHNOLOGIES, INC.
To: MAGIQ TECHNOLOGIES, INC
Reel/Frame 024697/0435 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2007
From: VIG, HARRY
To: MAGIQ TECHNOLOGIES, INC.
Reel/Frame 019453/0490 →