Spin squeezing in internal bosonic Josephson junctions via enhanced
shortcuts to adiabaticity
- URL: http://arxiv.org/abs/2305.20032v3
- Date: Fri, 17 Nov 2023 16:54:14 GMT
- Title: Spin squeezing in internal bosonic Josephson junctions via enhanced
shortcuts to adiabaticity
- Authors: Manuel Odelli, Vladimir M. Stojanovic, Andreas Ruschhaupt
- Abstract summary: We investigate a time-efficient and robust preparation of spin-squeezed states in bosonic Josephson junctions.
We show that the state-preparation times obtained using the eSTA method compare favourably to those found in previously proposed approaches.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We investigate a time-efficient and robust preparation of spin-squeezed
states -- a class of states of interest for quantum-enhanced metrology -- in
internal bosonic Josephson junctions with a time-dependent nonlinear coupling
strength between atoms in two different hyperfine states. We treat this
state-preparation problem, which had previously been addressed using shortcuts
to adiabaticity (STA), using the recently proposed analytical modification of
this class of quantum-control protocols that became known as the enhanced STA
(eSTA) method. We characterize the state-preparation process by evaluating the
time dependence of the coherent spin-squeezing and number-squeezing parameters
and the target-state fidelity. We show that the state-preparation times
obtained using the eSTA method compare favourably to those found in previously
proposed approaches. We also demonstrate that the increased robustness of the
eSTA approach -- compared to its STA counterpart -- leads to additional
advantages for potential experimental realizations of strongly spin-squeezed
states in bosonic Josephson junctions.
Related papers
- Fast adiabatic preparation of multi-squeezed states by jumping along the path [8.31156720757179]
We introduce a novel shortcuts to adiabaticity (STA) method for the fast preparation of multi-squeezed states.
We demonstrate the high-fidelity and fast preparation of multi-squeezed states, as well as hybrid entangled states between a bosonic mode and a qubit.
arXiv Detail & Related papers (2024-05-24T14:27:28Z) - Twist-and-turn dynamics of spin squeezing in bosonic Josephson junctions: Enhanced shortcuts-to-adiabaticity approach [0.0]
We show how to generate spin-squeezed states using shortcuts to adiabaticity (STA) and the recently developed enhanced version thereof (eSTA)
We show that the eSTA approach allows for a particularly robust realization of strongly spin-squeezed states in this system.
Our method could also be employed for the generation of metrologically-useful non-Gaussian states.
arXiv Detail & Related papers (2024-04-30T16:24:43Z) - Unlocking Heisenberg Sensitivity with Sequential Weak Measurement Preparation [0.0]
We generate entangled spin states devoid of the necessity for non-linear spin interactions.
The metrological sensitivity of the resulting state surpasses the standard quantum limit.
Our findings introduce a novel method for generating large-scale, non-classical, entangled states.
arXiv Detail & Related papers (2024-03-09T16:27:15Z) - Robustness of the projected squeezed state protocol [0.0]
Projected squeezed (PS) states are multipartite entangled states generated by unitary spin squeezing.
We simulate the generation of PS states in non-ideal experimental conditions with relevant decoherence channels.
Our findings highlight PS states as useful metrological resources, demonstrating a robustness against environmental effects with increasing qubit number N.
arXiv Detail & Related papers (2023-10-18T13:21:44Z) - Neural-network quantum states for ultra-cold Fermi gases [49.725105678823915]
This work introduces a novel Pfaffian-Jastrow neural-network quantum state that includes backflow transformation based on message-passing architecture.
We observe the emergence of strong pairing correlations through the opposite-spin pair distribution functions.
Our findings suggest that neural-network quantum states provide a promising strategy for studying ultra-cold Fermi gases.
arXiv Detail & Related papers (2023-05-15T17:46:09Z) - Simulating Spin-Orbit Coupling With Quasidegenerate N-Electron Valence
Perturbation Theory [77.34726150561087]
We present the first implementation of spin-orbit coupling effects in SO-QDNEVPT2.
The accuracy of these methods is tested for the group 14 and 16 hydrides, 3d and 4d transition metal ions, and two actinide dioxides.
arXiv Detail & Related papers (2022-11-11T20:03:37Z) - Effect of Emitters on Quantum State Transfer in Coupled Cavity Arrays [48.06402199083057]
We study the effects of atoms in cavities which can absorb and emit photons as they propagate down the array.
Our model is equivalent to previously examined spin chains in the one-excitation sector and in the absence of emitters.
arXiv Detail & Related papers (2021-12-10T18:52:07Z) - Assessment of weak-coupling approximations on a driven two-level system
under dissipation [58.720142291102135]
We study a driven qubit through the numerically exact and non-perturbative method known as the Liouville-von equation with dissipation.
We propose a metric that may be used in experiments to map the regime of validity of the Lindblad equation in predicting the steady state of the driven qubit.
arXiv Detail & Related papers (2020-11-11T22:45:57Z) - Probing the coherence of solid-state qubits at avoided crossings [51.805457601192614]
We study the quantum dynamics of paramagnetic defects interacting with a nuclear spin bath at avoided crossings.
The proposed theoretical approach paves the way to designing the coherence properties of spin qubits from first principles.
arXiv Detail & Related papers (2020-10-21T15:37:59Z) - Feedback-induced instabilities and dynamics in the Jaynes-Cummings model [62.997667081978825]
We investigate the coherence and steady-state properties of the Jaynes-Cummings model subjected to time-delayed coherent feedback.
The introduced feedback qualitatively modifies the dynamical response and steady-state quantum properties of the system.
arXiv Detail & Related papers (2020-06-20T10:07:01Z) - Adiabatic preparation of entangled, magnetically ordered states with
cold bosons in optical lattices [0.0]
We analyze a scheme for preparation of magnetically ordered states of bosonic atoms in optical lattices.
We compute the dynamics during adiabatic and optimized time-dependent ramps to produce ground states of effective spin Hamiltonians.
arXiv Detail & Related papers (2020-03-23T17:43:41Z)
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.