Entanglement-enhanced test proposal for local Lorentz-symmetry violation via spinor atoms
Min Zhuang, Jiahao Huang, and Chaohong Lee

TL;DR
This paper proposes a multimode quantum interferometry method using entangled spinor atoms to test Lorentz-symmetry violation with unprecedented precision, potentially reaching the Heisenberg limit.
Contribution
It introduces a practical multimode GHZ state-based interferometry scheme for LSV testing, achieving Heisenberg-limited precision with accessible measurements.
Findings
Heisenberg limit precision $oldsymbol{rac{1}{F^2N}}$ for LSV parameter $oldsymbol{\kappa}$
Feasible three-mode interferometry with spin-1 Bose condensates
Measurement precision surpasses standard quantum limit, approaching Heisenberg limit
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 via an ensemble of spinor atoms. By employing an -atom multimode GHZ state, the test precision can attain the Heisenberg limit …
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Taxonomy
TopicsQuantum Mechanics and Applications · Noncommutative and Quantum Gravity Theories · Quantum Information and Cryptography
