Entanglement-enhanced test proposal for local Lorentz-symmetry violation
via spinor atoms
- URL: http://arxiv.org/abs/2201.11366v4
- Date: Fri, 11 Nov 2022 09:36:59 GMT
- Title: Entanglement-enhanced test proposal for local Lorentz-symmetry violation
via spinor atoms
- Authors: Min Zhuang, Jiahao Huang, and Chaohong Lee
- Abstract summary: Testing Lorentz-symmetry violation (LSV) via atomic systems attracts extensive interests in theory and experiment.
We propose a multimode many-body quantum interferometry for testing the LSV parameter $kappa$ via an ensemble of spinor atoms.
By employing an $N$-atom multimode GHZ state, the test precision can attain the Heisenberg limit $Delta kappa propto 1/(F2N)$ with the spin length $F$ and the atomic number $N$.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Invariance under Lorentz transformations is fundamental to both the standard
model and general relativity. Testing Lorentz-symmetry violation (LSV) via
atomic systems attracts extensive interests in theory and experiment. Some
recent proposals for testing LSV present that the effects of violation can be
described as a local interaction. Further, the test precision of LSV can be
enhanced via quantum entanglement and its quantum Fisher information (QFI)
implicates that the test precision can asymptotically reach the Heisenberg
limit. In general, the limited resolution of collective observables prevents
the detection of large QFI. Here, we propose a multimode many-body quantum
interferometry for testing the LSV parameter $\kappa$ via an ensemble of spinor
atoms. By employing an $N$-atom multimode GHZ state, the test precision can
attain the Heisenberg limit $\Delta \kappa \propto 1/(F^2N)$ with the spin
length $F$ and the atomic number $N$. We find an actual observable (or
practical measurement process) to achieve the ultimate precision and study the
LSV test via an experimentally accessible three-mode interferometry with Bose
condensed spin-1 atoms for example. By selecting suitable input states and
unitary recombination operation, the LSV parameter $\kappa$ can be extracted
via population measurement. Especially, the measurement precision of the LSV
parameter $\kappa$ can beat the standard quantum limit and even approach the
Heisenberg limit via spin mixing dynamics or driving through quantum phase
transitions.
Our proposed scheme may open up a feasible way for a drastic improvement of
the LSV tests with atomic systems and provide an alternative application of
multi-particle entangled states.
Related papers
- Robust spectral $\pi$ pairing in the random-field Floquet quantum Ising
model [44.84660857803376]
We study level pairings in the many-body spectrum of the random-field Floquet quantum Ising model.
The robustness of $pi$ pairings against longitudinal disorder may be useful for quantum information processing.
arXiv Detail & Related papers (2024-01-09T20:37:48Z) - Finite Pulse-Time Effects in Long-Baseline Quantum Clock Interferometry [45.73541813564926]
We study the interplay of the quantum center-of-mass $-$ that can become delocalized $-$ together with the internal clock transitions.
We show at the example of a Gaussian laser beam that the proposed quantum-clock interferometers are stable against perturbations from varying optical fields.
arXiv Detail & Related papers (2023-09-25T18:00:03Z) - Heisenberg Limit beyond Quantum Fisher Information [0.0]
Using entangled quantum states, it is possible to scale the precision with $N$ better than when resources would be used independently.
I derive bounds on the precision of the estimation for the case of noiseless unitary evolution.
I analyze the problem of the Heisenberg limit when multiple parameters are measured simultaneously on the same physical system.
arXiv Detail & Related papers (2023-04-27T17:43:45Z) - Distributed quantum sensing with optical lattices [0.0]
In distributed quantum sensing the correlations between multiple modes, typically of a photonic system, are utilized to enhance the measurement precision of an unknown parameter.
We show that it can allow for parameter estimation at the Heisenberg limit of $(N(M-1)T)2$, where $N$ is the number of particles, $M$ is the number of modes, and $T$ is the measurement time.
arXiv Detail & Related papers (2022-08-10T03:47:44Z) - Non-asymptotic Heisenberg scaling: experimental metrology for a wide
resources range [1.172672077690852]
We show a method which suitably allocates the available resources reaching Heisenberg scaling without any prior information on the parameter.
We quantitatively verify Heisenberg scaling for a considerable range of $N$ by using single-photon states with high-order orbital angular momentum.
arXiv Detail & Related papers (2021-10-06T16:39:24Z) - Enhanced nonlinear quantum metrology with weakly coupled solitons and
particle losses [58.720142291102135]
We offer an interferometric procedure for phase parameters estimation at the Heisenberg (up to 1/N) and super-Heisenberg scaling levels.
The heart of our setup is the novel soliton Josephson Junction (SJJ) system providing the formation of the quantum probe.
We illustrate that such states are close to the optimal ones even with moderate losses.
arXiv Detail & Related papers (2021-08-07T09:29:23Z) - Partitioning dysprosium's electronic spin to reveal entanglement in
non-classical states [55.41644538483948]
We report on an experimental study of entanglement in dysprosium's electronic spin.
Our findings open up the possibility to engineer novel types of entangled atomic ensembles.
arXiv Detail & Related papers (2021-04-29T15:02:22Z) - 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) - Beating the Standard Quantum Limit under Ambient Conditions with
Solid-State Spins [14.837590652322564]
We show a full interferometer sequence beating the standard quantum limit () to the Heisenberg limit (HL)
We employ a hybrid multi-spin system, namely the nitrogen-vacancy (NV) defect in diamond.
The techniques used here are of fundamental importance for quantum sensing and computing, and naturally applicable to other solid-state spin systems.
arXiv Detail & Related papers (2021-01-28T15:04:49Z) - Bose-Einstein condensate soliton qubit states for metrological
applications [58.720142291102135]
We propose novel quantum metrology applications with two soliton qubit states.
Phase space analysis, in terms of population imbalance - phase difference variables, is also performed to demonstrate macroscopic quantum self-trapping regimes.
arXiv Detail & Related papers (2020-11-26T09:05:06Z) - A multiconfigurational study of the negatively charged nitrogen-vacancy
center in diamond [55.58269472099399]
Deep defects in wide band gap semiconductors have emerged as leading qubit candidates for realizing quantum sensing and information applications.
Here we show that unlike single-particle treatments, the multiconfigurational quantum chemistry methods, traditionally reserved for atoms/molecules, accurately describe the many-body characteristics of the electronic states of these defect centers.
arXiv Detail & Related papers (2020-08-24T01:49:54Z)
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.