Claims
- 1. A device for storage and retrieval of a single photon for uses related to quantum computing, comprising:
an optical input; an optical output; and an optical loop optically connected to the optical input and the optical output the optical loop comprising a storage loop and an optical switch, wherein, based on a selectable state of the optical switch, a single photon incident onto the optical switch is directed into one of the storage loop and the optical output.
- 2. The device as recited in claim 1, wherein
the optical input is connected to the optical switch; and based on the selectable state of the optical switch, a single photon incident onto the optical switch is blocked.
- 3. The device as recited in claim 1, wherein the optical loop passes a single photon only with a particular polarization.
- 4. The device as recited in claim 3, wherein the optical switch is operated to increase chances that a single photon is propagating in the optical loop at a particular time.
- 5. The device as recited in claim 1, wherein the optical loop passes a single photon incident on the optical input with any polarization state.
- 6. The device as recited in claim 5, wherein:
the single photon incident on the optical input has an initial polarization state; and the optical switch is operated to direct the single photon into the optical output with an output polarization state coherently matched to the initial polarization state.
- 7. The device as recited in claim 6, wherein the output polarization state is the same as the initial polarization state.
- 8. The device as recited in claim 6, wherein the output polarization state has output values for basis polarization states that are swapped relative to input values for the basis polarization states in the initial polarization superposition state.
- 9. The device as recited in claim 1, further comprising an electronic controller for setting the selectable state of the optical switch.
- 10. A source for a single photon for uses related to quantum computing, comprising:
an optical switch with an optical input spatial mode and two optical output spatial modes, wherein a photon is directed to one of the two output spatial modes based on a selectable state of the optical switch; a storage loop for directing a photon from a loop mode of the two output spatial modes of the optical switch to the input spatial mode of the optical switch; a source for a pair of photons; a single-photon detector that outputs a detector electric signal when a photon is incident on the single-photon detector; an optical coupler that directs a first photon of the pair of photons to the single-photon detector and a second photon of the pair of photons to the input spatial mode of the optical switch; and an electronic processor connected to the single photon detector and the optical switch, wherein the electronic processor is configured for setting a first state of the optical switch based at least in part on the detector electric signal that is output from the single-photon detector.
- 11. The source as recited in claim 10, wherein:
the electronic processor is further connected to an electronic input; and the electronic processor is further configured for setting a second state of the optical switch based at least in part on an input signal received on the electronic input.
- 12. The source as recited in claim 10, wherein the first state causes the optical switch to direct a photon incident in the input spatial mode into the loop mode.
- 13. The source as recited in claim 11, wherein the second state causes the optical switch to direct a photon incident in the input spatial mode into a source output mode of the two output spatial modes, wherein the source output mode is different from the loop mode.
- 14. The source as recited in claim 13, further comprising a polarization rotator optically coupled to the source output mode to rotate a polarization of a photon propagating along the source output mode to produce a single photon with a particular polarization state.
- 15. The source as recited in claim 10, said optical coupler further comprising a delay path to delay an arrival time of the second photon at the optical switch until after the processor has set the first state of the optical switch based on the detector electric signal that is output by the single-photon detector when the first photon is incident on the single-photon detector.
- 16. The source as recited in claim 10, said source for the pair of photons further comprising a pulsed parametric down-conversion (PDC) source.
- 17. The source as recited in claim 10, said optical switch further comprising a polarizing beam splitter (PBS) and a Pockels cell that is used to rotate a polarization of a photon propagating in the storage loop based on a selectable electric state of the Pockels cell, wherein a polarizing beam splitter for a particular set of orthogonal polarizations transmits a photon that arrives on a particular input spatial mode with one polarization of the particular set onto one output spatial mode, and transmits a photon that arrives on the particular input spatial mode with a different polarization of the particular set onto a different output spatial mode.
- 18. The source as recited in claim 17, said input spatial mode comprising two input spatial modes of the polarizing beam splitter, wherein the two input spatial modes of the polarizing beam splitter comprise:
a first beam-splitter input mode coupled to the optical coupler for receiving the second photon of the pair of photons from the source for the pair of photons, and a second beam-splitter input mode perpendicular to the first beam-splitter input mode for receiving a photon propagating in the storage loop
- 19. The source as recited in claim 18, wherein said PBS is oriented to reflect the second photon arriving on the first beam-splitter mode into the loop mode.
- 20. The source as recited in claim 19, wherein said electronic processor is further configured to:
set the first state on the Pockels cell so the Pockels cell rotates the polarization of the second photon during an initial pass of the second photon through the storage loop so that the second photon is transmitted by the PBS into the loop mode; and sets a second state of the Pockels cell so that the Pockels cell does not rotate the polarization of the second photon on zero or more subsequent passes through the storage loop so the photon is transmitted by the PBS into the loop mode on each of the zero or more subsequent passes.
- 21. The source as recited in claim 20, wherein when a photon is demanded from the source, said electronic processor sets a third state of the Pockels cell so that the Pockels cell rotates the polarization of the second photon during a last pass of the second photon through the storage loop so that the second photon is reflected by the PBS into a source output mode of the two output spatial modes, wherein the source output mode is different from the loop mode.
- 22. The source as recited in claim 10, said storage loop further comprising a lens to minimize a divergence of a path of the second photon through the storage loop.
- 23. A linear optics device for uses related to quantum computing, comprising a linear optics quantum logic gate connected to a plurality of sources of single photons, wherein each source of a single photon comprises:
an optical switch with an optical input spatial mode and two optical output spatial modes, wherein a photon is directed to one of the two output spatial modes based on a selectable state of the optical switch; a storage loop for directing a photon from a loop mode of the two output spatial modes of the optical switch to the input spatial mode of the optical switch; a source for a pair of photons; a single-photon detector that outputs a detector electric signal when a photon is incident on the single-photon detector; an optical coupler that directs a first photon of the pair of photons to the single-photon detector and a second photon of the pair of photons to the input spatial mode of the optical switch; and an electronic processor connected to the single photon detector and the optical switch, wherein the electronic processor is configured for setting a first state of the optical switch based at least in part on the detector electric signal that is output from the single-photon detector.
- 24. A storage device for a single photon of arbitrary polarization state for uses related to quantum computing, comprising:
a memory input comprising a first optical spatial mode for receiving a single photon of arbitrary polarization state; a memory output comprising a second optical spatial mode; an optical loop optically connected to the memory input and the memory output through which the single photon propagates from a particular position back to the particular position; and an optical switch disposed in the optical loop for directing the single photon in the optical loop onto one of the optical loop and the memory output, based on a selectable state of the optical switch.
- 25. The storage device as recited in claim 24, wherein the single photon directed to the memory output has the same polarization state as the single photon received at the memory input.
- 26. The storage device as recited in claim 24, wherein a value for each basis polarization state of a pair of basis polarization states for the single photon directed to the memory output is the same as a value for a different basis polarization state of the pair of basis polarization states of the single photon received at the memory input.
- 27. The storage device as recited in claim 24, further comprising:
a memory electronic input; and an electronic processor connected to the optical switch and the memory electronic input, wherein the electronic processor is configured for
setting a first state of the optical switch to direct the single photon onto the optical loop, and setting a second state of the optical switch to direct the single photon onto the memory output.
- 28. The storage device as recited in claim 24, wherein one basis polarization state of a pair of basis polarization states propagates in one direction through the storage loop and a different basis polarization state of the pair propagates in an opposite direction through the storage loop.
- 29. The storage device as recited in claim 28, wherein phase shifts induced by vibrations in a medium of the optical loop are substantively equal for the pair of basis polarization states to preserve coherence of the arbitrary polarization state of the single photon received at the memory input.
- 30. The storage device as recited in claim 24, wherein a value for each basis polarization state of a pair of base polarization states for the single photon in one pass through the optical loop is the same as a value for a different basis polarization state of the pair of base polarization states of the single photon in an immediately previous pass through the optical loop.
- 31. The storage device as recited in claim 30, wherein polarization-dependent phase shifts do not increase substantively for the pair of basis polarization states after one pass through the optical loop to preserve coherence of the arbitrary polarization state of the single photon received at the memory input.
- 32. The storage device as recited in claim 24, wherein:
the optical loop is connected to the memory input and memory output at a polarizing beam-splitter (PBS); wherein a PBS for a particular set of orthogonal polarizations transmits a photon that arrives on a particular input spatial mode with one polarization of the particular set onto one output spatial mode, and transmits a photon that arrives on the particular input spatial mode with a different polarization of the particular set onto a different output spatial mode; the optical loop comprises a plurality of spatial modes of the PBS that are different from the memory input and the memory output; and two spatial modes of the PBS in the optical loop are optically connected to a Pockels cell.
- 33. The storage device as recited in claim 32, wherein:
the Pockels cell is in one of a first electrical state and a second electrical state; and when the Pockels cell is in the first electrical state, a value for each basis polarization state of a pair of basis polarization states for the single photon emitted from the Pockels cell is set to a value for a different basis polarization state of the pair of basis polarization states of the single photon incident on the Pockels cell, whereby the single photon is directed onto the optical loop.
- 34. The storage device as recited in claim 33, wherein when the Pockels cell is in the second electrical state, a polarization state of an incident photon is not changed, whereby the single photon is directed onto the memory output.
- 35. A method for fabricating a device for storing and retrieving a single photon for uses related to quantum computing, comprising:
optically connecting, to an optical input and an optical output, an optical loop through which a single photon introduced through the optical input is passed; disposing in the optical loop a storage loop; and disposing in the optical loop an optical switch for directing a single photon incident on the optical switch onto one of the storage loop and the optical output, based on a selectable state of the optical switch.
- 36. A method for storing and retrieving a single photon for uses related to quantum computing, comprising:
receiving a single photon through an optical input connected to an optical loop that includes a storage loop and an optical switch; setting a selectable state of the optical switch; and based on the selectable state of the optical switch, directing a single photon incident on the optical switch into one of the storage loop and an optical output optically connected to the optical loop.
- 37. A method for fabricating a source of a single photon for uses related to quantum computing, comprising:
providing an optical switch with an optical input spatial mode and two optical output spatial modes, wherein a photon is directed to one of the two output spatial modes based on a selectable state of the optical switch; optically connecting a storage loop to the optical switch for directing a photon from a loop mode of the two output spatial modes of the optical switch to the input spatial mode of the optical switch; optically connecting an optical coupler to a source for a pair of photons and to the optical switch and to a single-photon detector, so that the coupler directs a first photon of the pair of photons to the single-photon detector and a second photon of the pair of photons to the input spatial mode of the optical switch; and electrically connecting an electronic processor to the single photon detector and the optical switch, wherein the electronic processor is configured for setting a first electric state of the optical switch based at least in part on a detector electric signal that is output from the single-photon detector when a photon is incident on the single-photon detector.
- 38. A method for generating a single photon for uses related to quantum computing, comprising the steps of:
receiving a first photon of a pair of photons from a source of pairs of photons onto a single-photon detector that generates a detector electric signal when a photon is incident on the single-photon detector; setting a first state of an optical switch based at least in part on the detector electric signal that is output from the single-photon detector, which first state causes the optical switch to direct a photon received on an optical input spatial mode to a first output spatial mode of two output spatial modes; receiving a second photon of the pair on the optical input spatial mode; directing the second photon from the optical switch through the first output spatial mode into a storage loop that returns the second electron to the optical switch after the second photon passes through the storage loop.
- 39. The method as recited in claim 38, further comprising the steps of:
determining whether the second photon is demanded; and if it is determined that the second photon is not demanded, then setting a second state of the optical switch to direct the second photon through the first output spatial mode back into the storage loop.
- 40. The method as recited in claim 39, further comprising, if it is determined that the second photon is demanded, then performing the step of setting a third state of the optical switch to direct the second photon through a different second mode of the two output spatial modes.
- 41. A method for storing a single photon of arbitrary polarization state for uses related to quantum computing, comprising:
receiving a single photon of arbitrary polarization state through an optical memory input spatial mode; directing the single photon into an optical loop in which the single photon propagates from a particular position back to the particular position; setting a selectable state of an optical switch disposed in the optical loop; and based on the selectable state of the optical switch, directing the single photon propagating in the optical loop through one of the optical loop and a memory output spatial mode.
- 42. The method as recited in claim 41, wherein:
said step of directing the single photon into an optical loop further comprises directing the single photon through a polarizing beam splitter disposed in the optical loop; and a polarizing beam splitter for a particular set of orthogonal polarizations transmits a photon that arrives on a particular input spatial mode with one polarization of the particular set onto one output spatial mode, and transmits a photon that arrives on the particular input spatial mode with a different polarization of the particular set onto a different output spatial mode.
- 43. The method as recited in claim 42, wherein:
said step of setting the selectable state further comprises setting a particular state of a plurality of selectable states; and said step of directing the single photon based on the state further comprising, based on the particular state, directing the single photon through the optical loop by changing a value for each basis polarization state of a pair of basis polarization states for the single photon emitted from the optical switch to be the same as a value for a different basis polarization state of the pair of basis polarization states of the single photon incident on the optical switch.
- 44. The method as recited in claim 42, wherein:
said step of setting the state further comprises setting a particular state of a plurality of selectable states; and said step of directing the single photon based on the state further comprising, based on the particular state, directing the single photon through the memory output spatial mode by not changing, in the optical switch, a polarization state of the single photon incident on the optical switch.
- 45. A method of providing a photonic qubit memory, comprising:
coherently storing a single photon with an arbitrary initial polarization in an optical loop; determining whether a demand for the photon is received; and if it is determined that a demand is received, then coherently switching the single-photon out of the optical loop.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims benefit of Provisional Appln. 60/431,835, filed Dec. 9, 2002, the entire contents of which are hereby incorporated by reference as if fully set forth herein, under 35 U.S.C. § 119(e).
[0002] This application claims benefit of Provisional Appln. 60/433,072, filed Dec. 13, 2002, the entire contents of which are hereby incorporated by reference as if fully set forth herein, under 35 U.S.C. §119(e).
[0003] This application is related to U.S. patent application, Ser. No. 10/286,735, by T. Pittman et al., filed Nov. 1, 2002 (hereinafter referenced as Pittman I), the entire contents of which are hereby incorporated by reference as if fully set forth herein.
STATEMENT OF GOVERNMENTAL INTEREST
[0004] This invention was made in part with Government support under Contract No. N0001-491-J1485 awarded by the Office of Naval Research. The Government has certain rights in the invention.
Provisional Applications (2)
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Number |
Date |
Country |
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60431835 |
Dec 2002 |
US |
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60433072 |
Dec 2002 |
US |