Generation of quantum light states
A photonic quantum state generator is presented for generation of one or more predetermined photonic quantum states in a range from radiofrequency to X-ray. The generator comprises: a free particles source controllably operable to provide a flow of said free particles with predetermined one or more flow parameters; a shaping unit located in a vicinity of a flow of the free particles and adapted to apply wavefunction shaping to provide coherently shaped free particles in either one of time-energy domain or space-momentum domain; and an interaction unit comprising a photonic structure and defining an interaction region enabling m interactions (m≥1) between a photonic mode within said interaction region and the flow of the coherently shaped free particles having said one or more flow parameters satisfying a phase-matching condition with respect to the photonic mode, thereby generating said one or more predetermined photonic quantum states by a conditional displacement mechanism.
1 . A photonic quantum state generator configured and operable to generate one or more predetermined photonic quantum states in a range from radiofrequency to X-ray, the generator comprising:
a free particles source controllably operable to provide a flow of said free particles with predetermined one or more flow parameters;
a shaping unit located in a vicinity of a flow of the free particles and configured and operable to apply controllable wavefunction shaping to provide coherently shaped free particles in either one of time-energy domain or space-momentum domain, said controllable wavefunction shaping affecting a change in one or more parameters of the free particles comprising one or more of a frequency spacing between energy combs of the free particles, and time spacing between pulses of the free particles in a pulse train;
an interaction unit comprising a photonic structure and defining an interaction region enabling m interactions (m≥1) between a photonic mode within said interaction region and the flow of the coherently shaped free particles having said one or more flow parameters satisfying a phase-matching condition with respect to the photonic mode, said interaction being in the form of a conditional displacement mechanism describing an effect of said change in one or more parameters of the free particles resulting from said controllable wavefunction shaping, on the photonic modes within the photonic structure, thereby generating said one or more predetermined photonic quantum states by the conditional displacement mechanism; and
a control system comprising: a post-interaction measurement unit configured and operable to generate measured data indicative of at least one parameter of the free particles after the interaction; and at least one post-selection unit configured and operable to analyze the measured data and determine corresponding photonic quantum states being generated as result of the interactions with the flow of the coherently shaped free particles, and being capable of controlling feedforward operation of the shaping unit to selectively adjust parameters of the flow of the coherently shaped free particles to obtain the desired state in a next interaction session.
2 . The generator according to claim 1 , further comprising a control system comprising: a post-interaction measurement unit configured and operable to perform a number resolving post-interacting measurement of the free particles emerging from the interaction region, and generating measured data indicative of at least one parameter of the free particles after the interaction.
3 . The generator according to claim 2 , wherein said at least one parameter comprises one of the following: energy for the coherently shaped free particle in the time-energy domain, and a position in space for the coherently shaped free particle in the space-momentum domain.
4 . The generator according to claim 2 , wherein said post-interaction measurement unit comprises a spectrometer configured and operable to perform said number and energy resolving post-interacting measurement providing the measured data indicative of an energy change of the free particle after said interaction with the photonic mode, thereby controlling the photonic quantum states being generated.
5 . The generator according to claim 2 , wherein the free particles are electrons, said shaping unit comprising at least one electron beam splitter unit configured and operable to shape the wavefunction to be coherently shaped in a form of two or more spatially separated electron beams, said post-interaction measurement unit comprising an additional beam splitter operation configured to interfere the two or more spatially separated beams of electrons and an electron counting camera configured and operable to perform the number resolving measurement and providing the measured data indicative of the spatial trajectory change of the electrons after said interaction with the photonic mode and with the additional post interaction beam splitter/combiner, thereby enabling controlling the photonic quantum states being generated.
6 . The generator according to claim 2 , wherein said control unit further comprises a post-selection unit configured and operable to analyze the measured data and determine corresponding photonic quantum states being generated as result of the interactions with the flow of the coherently shaped free particles, enabling feedback post-selection mode for selecting desired photonic quantum states.
7 . The generator according to claim 2 , wherein said control unit further comprises a post-selection unit configured and operable to analyze the measured data and determine corresponding photonic quantum states being generated as result of the interactions with the flow of the coherently shaped free particles, enabling feedforward operation of the shaping unit to selectively adjust parameters/conditions of the flow of the coherently shaped free particles to obtain the desired state in a next interaction session.
8 . The generator according to claim 7 , configured and operable to perform arbitrary single qubit gates on Gottesman-Kitaev-Preskill (GKP) quantum photonic states being generated.
9 . The generator according to claim 8 , configured and operable to perform quantum error correction on the GKP state in the photonic mode.
10 . The generator according to claim 1 , wherein said shaping unit is configured and operable to shape the wavefunction to be coherently shaped in energy in the form of an energy comb.
11 . The generator according to claim 10 , wherein said shaping unit is configured and operable to provide said wavefunction coherently shaped in time in a form of a pulse train having an energy spectrum in a form of a series of peaks with equal energy spacing N·ℏω between neighboring peaks, where ω is a frequency of said photonic mode defined by said photonic structure, and N is an integer N≥2, the coherently shaped pulse train while interacting with the photonic mode, generating radiation in the form of a superposition of N coherent photonic states of different phases.
12 . The generator according to claim 11 , wherein said peaks are of substantially equal amplitudes and of approximately linear phase relation.
13 . The generator according to claim 11 , wherein a value of N is selected in accordance with the one or more predetermined photonic quantum states to be generated, such that the energy spacing includes a selected number of k-shifted energy states of the free particles with a ℏω shift, k being an integer from 0 to (N−1).
14 . The generator according to claim 11 , wherein the shaping unit comprises: an electromagnetic field source applying an electromagnetic field onto the free particles having a frequency F EM in a predetermined relation with a frequency of F RS of said photonic mode, thereby producing said coherently shaped pulse train.
15 . The generator according to claim 14 , wherein said relation satisfies the following condition: F EM =N·F RS .
16 . The generator according to claim 14 , wherein said shaping unit comprises a free-electron laser.
17 . The generator according to claim 14 , comprises a resonating structure configured and operable as said shaping unit and said interaction unit.
18 . The generator according to claim 1 , wherein said shaping unit is configured and operable to shape the wavefunction to be coherently shaped in a form of two or more spatially separated beams of free particles.
19 . The generator according to claim 18 , wherein the free particles are electrons, said shaping unit comprises at least one electron beam splitter unit which comprises any one of electron bi-prism or electron phase-plate to thereby provide said two or more spatially separated beams of free particles.
20 . The generator according to claim 1 , wherein the free particles are electrons.
21 . The generator according to any one of claim 1 , wherein the free particles are atoms or molecules.
22 . The generator according to claim 1 , wherein the free particles are photons.
23 . The generator according to claim 22 , wherein a medium of the photonic structure defining the photonic mode is a resonating medium.
24 . The generator according to claim 23 , wherein said resonating medium comprises a non-linear medium.
25 . The generator according to claim 1 , wherein the free particles comprise one of the following: atoms, molecules or photons; and the photonic structure defining the photonic mode comprising one of the following: an optomechanical system or electro-optical system.
26 . The generator according to claim 1 , wherein the photonic structure defining said photonic mode comprises a photonic cavity.
27 . The generator according to claim 1 , wherein the photonic structure defining the photonic mode comprises one of the following: waveguide, cavity, photonic nanostructure.
28 . The generator according to claim 1 , wherein the photonic quantum states produced by said interaction include superposition of Gaussian states comprising one or more of the following: cat states, squeezed vacuum light states, and coherent grid states.
29 . The generator according to claim 28 , wherein said coherent grid states comprise Gottesman-Kitaev-Preskill (GKP) states.
30 . The generator according to claim 29 , wherein said GKP states are generated with above 10 dB squeezing and fidelities above 90% at post-selection probability of 10%.
31 . The generator according to claim 29 , wherein said GKP states are generated with post-selection probability above 30% using an initially squeezed vacuum state.
32 . The generator according to claim 29 , configured and operable to provide entanglement between multiple GKP states using the interaction between a single electron qubit with multiple photonic modes.
33 . The generator according to claim 32 , wherein said interaction with multiple GKP states provides two qubit gates between two GKP states.
34 . The generator according to claim 32 , wherein said interaction with multiple GKP states provides entangled multi qubits states, comprising GHZ and/or cluster state.
35 . The generator according to claim 1 , wherein the free particles are ions.
36 . The generator according to claim 1 , wherein said one or more predetermined photonic quantum states correspond to information qubits.
37 . A quantum computing system comprising the generator according to claim 1 .