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Trapped Ion Quantum Computing

Super-Heisenberg Scaling Using Nonlinear Quantum Scrambling

arXiv
Authors: Dong Xie, Chunling Xu

Year

2025

Paper ID

17848

Status

Preprint

Abstract Read

~2 min

Abstract Words

137

Citations

0

Abstract

Super-Heisenberg scaling, which scales as N with β>1 in terms of the number of particles N or T in terms of the evolution time T, is better than Heisenberg scaling in quantum metrology. It has been proven that super-Heisenberg scaling can be achieved when the Hamiltonian of the system involves many-body interactions or the time-dependent terms. We demonstrate that nonlinear quantum scrambling facilitates the achievement of super-Heisenberg scaling T when the generator of the parameter is time-independent. More importantly, in dissipative systems, we can still obtain super-Heisenberg scaling in the friction model. In the optical cavity system, an exponential improvement in measurement precision over time can be achieved by combining injected external squeezing and intracavity squeezing. Our work provides an optimal method for leveraging nonlinear resources to enhance the measurement precision of the driving field.

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  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
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  • Super-Heisenberg scaling, which scales as N^-β with β>1 in terms of the number of particles N or T^-β in terms of the evolution time T, is better than Heisenberg scaling in...

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