Method and system for generation and control of high-dimensional multi-partite quantum states
11556831 · 2023-01-17
Assignee
- INSTITUT NATIONAL DE LA RECHERCHE SCIENTIFIQUE
- The University Court Of The University Of Glasgow (N/A)
Inventors
- Michael Kues (Hannover, DE)
- Christian Reimer (Lübeck, DE)
- Stefania Sciara (Montreal, CA)
- Piotr Roztocki (Longueuil, CA)
- Luis Romero Cortes (Bellavista, ES)
- José Azaña (Montreal, CA)
- Yoann Jestin (Montreal, CA)
- Roberto Morandotti (Montreal, CA)
Cpc classification
G06N10/00
PHYSICS
B82Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B82Y20/00
PERFORMING OPERATIONS; TRANSPORTING
G02F1/00
PHYSICS
International classification
Abstract
A method and a system for generating a hyper-entangled high-dimensional time-bin frequency-bin state, the method comprising generating a hyper-entangled state composed of a time-bin and frequency-bin encoded state, and individually modifying at least one of: i) the amplitude and ii) the phase of the state components at different frequency-bins and different time-bins of the hyper-entangled state. The system comprises a non-linear medium exited with multiple pulses in broad phase-matching conditions, a frequency mode separator and an amplitude/phase modulator, the frequency mode separator temporally and spatially separating frequency modes of the hyper-entangled state, the amplitude/phase modulator individually modifying at least one of: i) the amplitude (and ii) the phase of the state components at different frequency-bins and different time-bins of the hyper-entangled state.
Claims
1. A method for generating a hyper-entangled high-dimensional time-bin frequency-bin state from a hyper-entangled state composed of a time-bin and frequency-bin encoded state, comprising generating a hyper-entangled state composed of a time-bin and frequency-bin encoded state using a non-linear medium exited with multiple pulses in broad phase-matching conditions, and individually modifying at least one of: i) the amplitude and ii) the phase of the state components at different frequency-bins and different time-bins of the hyper-entangled state, by temporally and spatially separating frequency modes of the hyper-entangled state and modifying the at least one of: i) the amplitude and ii) the phase of the state components at different frequency-bins and different time-bins of the hyper-entangled state.
2. The method of claim 1, wherein said modifying at least one of: i) the amplitude and ii) the phase of different state components at frequency-bins and time-bins of the hyper-entangled state comprises frequency-to-time-to-frequency mapping; and at least one of: i) phase modulating and ii) amplitude modulating.
3. The method of claim 1, wherein said modifying at least one of: i) the amplitude and ii) the phase of different state components at frequency-bins and time-bins of the hyper-entangled state comprises frequency-to-time-to-frequency mapping using one of: dispersive fibers, fiber-Bragg gratings and fiber-Bragg waveguides, and at least one of: i) phase modulating and ii) amplitude modulating.
4. The method of claim 1, wherein said modifying at least one of: i) the amplitude and ii) the phase of different state components at frequency-bins and time-bins of the hyper-entangled state comprises temporally and spatially separating frequency modes of the hyper-entangled state, and at least one of individually i) phase modulating and ii) amplitude modulating the frequency modes.
5. The method of claim 1, comprising exciting the non-linear medium with multiple laser pulses depending on a target time-bin dimensionality in broad phase-matching conditions.
6. The method of claim 1, wherein the non-linear medium is a non-resonant non-linear medium, the method comprising exciting the non-resonant non-linear medium with multiple pulses in broad phase-matching conditions and segmenting output spectra into different frequency bins.
7. The method of claim 1, wherein the non-linear medium is a -resonant non-linear medium, the method comprising exciting the resonant non-linear medium with multiple pulses in broad phase-matching conditions.
8. The method of claim 1, comprising exciting a nonlinear microring resonator with multiple pulses in broad phase-matching conditions.
9. The method of claim 1, wherein said modifying at least one of: i) the amplitude and ii) the phase comprises using a controlled quantum gate.
10. The method of claim 1, comprising modifying the amplitude, thereby turning the hyper-entangled state into a Greenberger-Horne-Zeilinger state.
11. The method of claim 1, comprising modifying the phase, thereby turning the hyper-entangled state into a cluster state.
12. A system for generating a hyper-entangled high-dimensional time-bin frequency-bin state from a hyper-entangled state composed of a time-bin and frequency-bin encoded state, comprising a non-linear medium exited with multiple pulses in broad phase-matching conditions, a frequency mode separator and an amplitude/phase modulator, said frequency mode separator temporally and spatially separating frequency modes of the hyper-entangled state, said amplitude/phase modulator individually modifying at least one of: i) the amplitude and ii) the phase of the state components at different frequency-bins and different time-bins of the hyper-entangled state.
13. The system of claim 12, wherein said non-linear medium is one of: a resonant and a non-resonant medium.
14. The system of claim 12, wherein said non-linear medium is a non-resonant medium, the system comprising filters for segmenting output spectra into different frequency bins.
15. The system of claim 12, wherein said non-linear medium is a nonlinear microring resonator, the system comprising filters for segmenting output spectra into different frequency bins.
16. The system of claim 12, wherein said non-linear medium is one of: fibers and waveguides.
17. The system of claim 12, wherein said non-linear medium is a nonlinear microring resonator.
18. The system of claim 12, wherein said frequency mode separator comprises one of: dispersive fibers, fiber-Bragg gratings and fiber-Bragg waveguides.
19. An amplitude and phase quantum gate, comprising a frequency mode separator and an amplitude/phase modulator, said frequency mode separator temporally and spatially separating frequency modes of an hyper-entangled state composed of a time-bin and frequency-bin encoded state, said amplitude/phase modulator individually modifying at least one of: i) the amplitude and ii) the phase of the state components at different frequency-bins and different time-bins of the hyper-entangled state.
20. The amplitude and phase quantum gate of claim 19, wherein said frequency mode separator comprises one of: dispersive fibers, fiber-Bragg gratings and fiber-Bragg waveguides.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the appended drawings:
(2)
(3)
(4)
(5)
(6)
(7)
DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
(8) The present invention is illustrated in further details by the following non-limiting examples.
(9) A method for generating a time-bin and frequency-bin hyper-entangled state according to an embodiment of an aspect of the present disclosure comprises using a hyper-entangled state composed of a time-bin and frequency-bin entangled state as a starting point.
(10) Time-bin and frequency-bin entanglement types may be generated for example through spontaneous nonlinear parametric interactions, such as second- and third-order type nonlinearities, where one or more photons are annihilated to create two new photons, referred to as signal (s) and idler (i), at the same time.
(11) Due to the nondeterministic behavior, exciting such a process with for example double or multi-pulses, defining two or more temporal modes |1 and |2
allows to create two new photons in a superposition of two or more temporal modes |Ψ
.sub.t=|1
.sub.S|1
.sub.I+|2
.sub.S|2
.sub.I, leading to a two-photon time-bin entangled state (see
(12) When the phase-matching bandwidth of the spontaneous nonlinear process is larger than the bandwidth of the excitation, frequency correlations are intrinsically generated due to energy conservation. The two new photons are created in a superposition of different frequency components, which may be classified into two or more different frequency-bins |a and |b
, leading to a two-photon frequency-bin entangled state |Ψ
.sub.f=|a
.sub.S|a
.sub.1+|b
.sub.S|b
.sub.1. (see
(13) Although the time and frequency domains are connected via the Fourier-transformation, these two entanglement types occur on different time scales so that they can be considered independently. Specifically, when using a double pulse excitation, one may measure a frequency-bin entangled state created either in the first 1 or in the second pulse 2 of the double pulse excitation, i.e. a superposition of states, as well as a time-bin entangled state in the frequency mode a or b, i.e. in a superposition. This allows to mathematically multiply both states, resulting in a two-photon four-mode hyper-entangled state as follows:
|Ψ.sub.H=|Ψ
.sub.1.Math.|Ψ
.sub.f=|1
.sub.S|1
.sub.1|a
.sub.S|a
.sub.1+|1
.sub.S|.sub.1
.sub.1|b
.sub.S|b
.sub.1+|2
.sub.S|2
.sub.1|a
.sub.S|a
.sub.1+|2
.sub.S|2
.sub.1|b
.sub.S|b
.sub.1.
According to an embodiment of an aspect of the present disclosure, a controlled amplitude and phase gate is provided, where the amplitude and phases of all components of this hyper-entangled quantum state may be manipulated independently. If the amplitudes of the second and third terms of the wave-function |Ψ.sub.H are processed to remove these components, the quantum state is turned into a Greenberger-Home-Zeilinger state as follows:
(14)
(15) Additionally, by processing only the phase in a controlled phase gate that accesses the last term of the wave-function |Ψ.sub.H, which corresponds to the second time-bin and second frequency-bin, and changes its phase individually, the initial hyper-entangled product state may be turned into a duster state:
|Ψ.sub.C=½(|1
.sub.S|1
.sub.1|a
.sub.S|a
.sub.1+|1
.sub.S|.sub.1
.sub.1|b
.sub.S|b
.sub.1+|2
.sub.S|2
.sub.1|a
.sub.S|a
.sub.1−|2
.sub.S|2
.sub.1|b
.sub.S|b
.sub.1).
(16) The present method may be extended to higher dimensionalities, exploiting the easy dimension scalability of the time- and frequency-bin approach. For example, choosing three time-bins and three frequency-bins yields a nine-component product state that may then be converted into the following duster state:
(17)
(18) For this three-dimensional hyper-entangled four-mode cluster state, the phases are adjusted in such a way that a projection on the frequency-bin or time-bin collapses the system into maximally-entangled states that are orthogonal to each other.
(19) The method may be generalized to achieve Greenberger-Home-Zeilinger and cluster states of arbitrarily-high dimension, i.e. an arbitrarily-large amount of D time-bins and D frequency-bins. It is to be noted that, to generate duster states and Greenberger-Home-Zeilinger states, the dimensionality for both the frequency- and time-bin entanglement needs to be the same:
(20)
(21) While examples of Greenberger-Home-Zeilinger and duster states are provided herein, the present method and system allow performing controlled amplitude and phase operations, allowing to generate a large variety of quantum states, extending beyond just the Greenberger-Home-Zeilinger and duster states detailed here, or to use the system to perform state manipulation.
(22) A method according to an embodiment of an aspect of the present disclosure comprises generating a hyper-entangled time-bin, frequency-bin four-mode state, and then processing the amplitude and phase terms of the generated state using a controlled quantum gate.
(23) To generate the hyper-entangled time-bin frequency-bin state, a nonlinear medium providing spontaneous parametric down-conversion or spontaneous four-wave mixing may be used for example. The nonlinear medium may be either non-resonant, such as for example a fiber or waveguide, or a resonant element, such as for example a nonlinear microring resonator. Exciting such nonlinear medium with double pulses, or triple pulses and even more depending on the time-bin dimensionality and assuring a broad phase-matching condition for the nonlinear process directly generates the hyper-entangled state. For non-resonant nonlinear media, the output spectra need to be segmented into different frequency-bins through filters; for resonant nonlinear elements, this filtering is intrinsically accomplished due to the resonance characteristics.
(24) In an implementation discussed herein, an on-chip microring resonator was excited with double, as well as triple pulses. The spontaneous four-wave mixing process creates signal and idler photons both in a superposition of at least three ring resonances, the free spectral range of the resonator being about 200 GHz. The signal and idler photons are frequency-entangled through energy conservation. The state amplitudes were directly measured through projection measurements on the time-bin and frequency-bin bases, {|1, |2
, |3
} and {|a
, |b
, |c
}, respectively.
(25) To turn this hyper-entangled state into a Greenberger-Horne-Zeilinger, cluster, or different type of quantum state as required for certain applications in sensing, computation or others, it is necessary to change the amplitude and/or phase for different frequency-bins at different time-bins, i.e. the different terms of the state in the wavevector representation. The method comprises mapping the different terms into the temporal domain, using frequency-to-time mapping techniques including, but not limited to, dispersive fibers and fiber-Bragg gratings/waveguides for example, to allow access to the amplitude-phase of each quantum state term individually, by means of temporal amplitude/phase modulators and programmable filters.
(26) In the particular implementation to achieve cluster states described herein, for the frequency-to-time mapping, a fiber Bragg grating (FBG) array 12 was used, formed by six individual fiber Bragg gratings 12a-12f separated by a distance selected to introduce a temporal delay on the reflected frequency components, in the present case 40 cm. Specifically, each fiber Bragg grating reflects a different frequency component at a different spatial position within the fiber, leading to frequency components exiting the fiber Bragg grating in reflection at different times. The reflected frequency components are then routed to an optical phase modulator 16 using a circulator 14. The temporal separation of the different frequency modes, in the present case about 4 ns, was selected to be smaller than the time delay of the time-bin entangled states, in the present case 24 ns, but larger than the temporal coherence of the photons, in the present case 0.6 ns, so that each individual photon temporal and frequency mode may be mapped to a specific arrival time at the modulator 16. Using a time-synchronized phase and/or amplitude modulation profile, generated for example by an arbitrary waveform generator, custom controlled amplitude/phase gates may then be implemented on the hyper-entangled product states. After the modulation step, the photons are sent back to the same fiber Bragg grating but from the opposite direction to reverse the frequency-to-time mapping. For the generation of cluster states only phase modulation is required, while for the generation of Greenberger-Horne-Zeilinger states also amplitude modulation is required (not shown in
(27) Controlled Amplitude/Phase Gate for Time-Bin Frequency-Bin Hyper-Entangled States:
(28) In
(29) Such a controlled amplitude and phase gate may be extended to even higher dimensions by considering more frequency components and adding corresponding fiber Bragg gratings, as well as using optical excitation comprising a higher number of coherent pulses, provided that the temporal separation of the six fiber Bragg gratings is larger than the coherence time of the photons, and that the speed of the electro-optic modulator is sufficient to perform the required modulations. Since the quantum state passes through the same fiber Bragg gratings array from both directions, imperfections in the time or phase delay caused by the fiber Bragg gratings are intrinsically compensated. The full system is also intrinsically phase stable since the quantum state propagates within a single waveguide mode.
(30) Alternative embodiments, without the use of circulators, comprises using a frequency beam-splitting element 40 such as a wavelength division multiplexing filter, diffraction grating, or an arrayed waveguide grating for separating the frequency modes on input hyper-entangled frequency bin-time-bin state, then implementing time-synchronized modulation of the quantum state in separate spatial modes, using phase and/or amplitude modulator 42, before frequency recombining using dense Wavelength Division Multiplexing (DWDM) or arrayed waveguide gratings 44 for example (see
(31) To confirm that the system and method generate hyper-entangled quantum states and manipulate them successfully in the controlled quantum gate, two- and three-dimensional duster states were experimentally characterized. Cluster state witness measurements were performed, which confirmed that the product states were successfully turned into duster states. Such a witness provides a measure that detects the presence of a specific type of entanglement. As the measured expectation value of the duster state witness operator was negative, a duster state was confirmed.
(32) A negative witness value was measured, which represents the first realization of high-dimensional multipartite quantum states with N=4 parties and D=3 dimensions. The quantum state has a Hilbert space dimensionality of D.sup.V=81, which is equivalent to 6.34 qubits, being already comparable to the largest optical duster states experimentally achieved, in non-integrated systems [20]. Most remarkably, this large Hilbert space is obtained with only two photons, highlighting the massive potential for scalability.
(33) As people in the art will appreciate, there is provided a method and a system for the generation of multipartite and high-dimensional quantum states, based on the simultaneous exploitation of the time and frequency degrees of freedom of a photon and the subsequent time-synchronized phase rotation and/or amplitude manipulation of single quantum state terms.
(34) The method provides generation of hyper-entanglement states via frequency-bin and time-bin entanglement, and modification of the states, for example by a controlled amplitude and phase gate or other forms of modification in the time domain.
(35) The method allows generating high-dimensional multipartite quantum states which are hyper-entangled product states of two-partite maximally-entangled quantum states.
(36) The method allows transforming the hyper-entangled states into different quantum states such as, but not limited to, Greenberger-Home-Zeilinger or duster states.
(37) The method is directly compatible with today's photonics microfabrication technologies, as well as telecommunications technologies, and may be implemented using inexpensive off-the-shelf devices.
(38) The method is fully scalable and may be extended to any amount of modes or photons, generating large multi-partite and high-dimensional entangled quantum states.
(39) The method may be used to multiplex multiple sources. Several such gates may also be concatenated, or used in combination with other state manipulation components, for example programmable spectral filters, modulators, excitation field control, etc.
(40) The method allows using on-chip frequency comb sources and standard telecommunications components, making the final device small, compact and scalable, a set of requirements of great importance for future market-ready quantum computing devices. Furthermore, the method scalability to higher dimensionality, allowing putting more quantum information into the two-photon four-partite state, in contrast to other approaches to increase information capacity that are based on using more photons (i.e. instead of two, four etc.), which drastically reduces the state detection rates. Finally, the method may be entirely integrated on a photonic chip, allowing for a production and commercialization thereof.
(41) The present method and system overcome previous limitations regarding increasing quantum state complexity and quantum state control. Here, the time and frequency photon degrees of freedom are used simultaneously. On-chip nonlinear resonant structures and commonly-used telecommunications fiber components may be used.
(42) The present method for the generation of high-dimensional and multi-partite optical quantum states simultaneously uses the photons' temporal and frequency degrees of freedom, and the control of these states by means of a controlled amplitude and phase gate. The versatility of the method may be used to realize and control a broad range of states. Herein, an implementation was discussed for the generation of high-dimensional Greenberger-Home-Zeilinger (GHZ) and high-dimensional Cluster states.
(43) The scope of the claims should not be limited by the embodiments set forth in the examples but should be given the broadest interpretation consistent with the description.
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