Quantum state preparation and one qubit logic from third-order nonlinear
interactions
- URL: http://arxiv.org/abs/2103.04022v1
- Date: Sat, 6 Mar 2021 04:15:15 GMT
- Title: Quantum state preparation and one qubit logic from third-order nonlinear
interactions
- Authors: F. A. Dom\'inguez-Serna and K. Garay-Palmett
- Abstract summary: We present a study on preparing and manipulating path-like temporal-mode (TM) qubits based on third-order nonlinear interactions.
Our study allows for experimentally feasible proposals capable of controllable arbitrary qubit transformations.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We present a study on preparing and manipulating path-like temporal-mode (TM)
qubits based on third-order nonlinear interactions. Specifically, we consider
the process of frequency conversion via difference frequency generation. To
prepare a qubit, we aim to use Gaussian input states to a nonlinear waveguide.
The coupling between the input state and a specific TM is maximized, obtaining
qubits prepared with fidelities close to one. TMs evolve linearly within the
medium; therefore, it is possible to define rotations around any axis contained
in the $xy$ plane, allowing spanning the full Bloch sphere in two steps.
Particularly, we present a method to obtain any of the Pauli quantum gates by
varying geometric or user-accessible parameters in a given experimental
configuration. Our study allows for experimentally feasible proposals capable
of controllable arbitrary qubit transformations.
Related papers
- Laser-free method for creation of two-mode squeezed state and
beam-splitter transformation with trapped ions [0.0]
We propose a laser-free method for creation of a phonon two-mode squeezed state and a beam-splitter transformation.
We show that a Heisenberg limit of precision can be achieved when the initial state with $n$ phonons evolves under the action of the beam-splitter transformation.
arXiv Detail & Related papers (2023-03-10T10:11:35Z) - Third quantization of open quantum systems: new dissipative symmetries
and connections to phase-space and Keldysh field theory formulations [77.34726150561087]
We reformulate the technique of third quantization in a way that explicitly connects all three methods.
We first show that our formulation reveals a fundamental dissipative symmetry present in all quadratic bosonic or fermionic Lindbladians.
For bosons, we then show that the Wigner function and the characteristic function can be thought of as ''wavefunctions'' of the density matrix.
arXiv Detail & Related papers (2023-02-27T18:56:40Z) - Characterizing Multipartite Non-Gaussian Entanglement for Three-Mode
Spontaneous Parametric Down-Conversion Process [13.641728072655278]
We present an experimentally practical method to characterize continuous-variable multipartite non-Gaussian entanglement.
We show that our method can be readily used to confirm fully inseparable tripartite non-Gaussian entangled states.
arXiv Detail & Related papers (2022-07-14T03:22:22Z) - Mean-field Floquet theory for a three-level cold-atom laser [0.0]
We present a theoretical description for a lasing scheme for atoms with three internal levels in a $V$-configuration.
The work provides simple methods for understanding complex physics that occur in cold atom lasers with narrow line transitions.
arXiv Detail & Related papers (2022-05-09T17:17:42Z) - Multipartite spatial entanglement generated by concurrent nonlinear
processes [91.3755431537592]
Continuous variables multipartite entanglement is a key resource for quantum technologies.
This work considers the multipartite entanglement generated in separated spatial modes of the same light beam by three different parametric sources.
arXiv Detail & Related papers (2021-11-09T17:15:13Z) - Quantum probes for the characterization of nonlinear media [50.591267188664666]
We investigate how squeezed probes may improve individual and joint estimation of the nonlinear coupling $tildelambda$ and of the nonlinearity order $zeta$.
We conclude that quantum probes represent a resource to enhance precision in the characterization of nonlinear media, and foresee potential applications with current technology.
arXiv Detail & Related papers (2021-09-16T15:40:36Z) - Designing Kerr Interactions for Quantum Information Processing via
Counterrotating Terms of Asymmetric Josephson-Junction Loops [68.8204255655161]
static cavity nonlinearities typically limit the performance of bosonic quantum error-correcting codes.
Treating the nonlinearity as a perturbation, we derive effective Hamiltonians using the Schrieffer-Wolff transformation.
Results show that a cubic interaction allows to increase the effective rates of both linear and nonlinear operations.
arXiv Detail & Related papers (2021-07-14T15:11:05Z) - Asymptotic optimality of twist-untwist protocols for Heisenberg scaling
in atomic interferometry [0.0]
We prove that twist-untwist protocols provide the lowest estimation error among quantum metrology protocols.
We consider all-to-all interactions generated by one-axis twisting.
We show that the error of a twist-untwist protocol can be decreased by a factor of $L$ without an increase in the noise of spin measurement.
arXiv Detail & Related papers (2021-04-13T22:29:26Z) - Hybrid Trilinear and Bilinear Programming for Aligning Partially
Overlapping Point Sets [85.71360365315128]
In many applications, we need algorithms which can align partially overlapping point sets are invariant to the corresponding corresponding RPM algorithm.
We first show that the objective is a cubic bound function. We then utilize the convex envelopes of trilinear and bilinear monomial transformations to derive its lower bound.
We next develop a branch-and-bound (BnB) algorithm which only branches over the transformation variables and runs efficiently.
arXiv Detail & Related papers (2021-01-19T04:24:23Z) - Continuous variable multimode quantum states via symmetric group
velocity matching [0.0]
We exploit symmetric group velocity matching (SGVM) to engineer the properties of the squeezed modes of the parametric down conversion (PDC)
This work paves the way towards the engineering of future large-scale quantum networks in the continuous variable regime.
arXiv Detail & Related papers (2020-12-25T20:52:32Z) - Simulating nonnative cubic interactions on noisy quantum machines [65.38483184536494]
We show that quantum processors can be programmed to efficiently simulate dynamics that are not native to the hardware.
On noisy devices without error correction, we show that simulation results are significantly improved when the quantum program is compiled using modular gates.
arXiv Detail & Related papers (2020-04-15T05:16:24Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.