Vibrational parametric arrays with trapped ions: non-Hermitian topological phases and quantum sensing
Miguel Clavero-Rubio, Tomas Ramos, Diego Porras

TL;DR
This paper explores non-Hermitian topological phases in a line of trapped ions with parametric modulation, revealing topological amplification and potential for ultra-weak force quantum sensing.
Contribution
It introduces a novel non-Hermitian topological model in trapped ions with phase-modulated parametric driving, enabling directional vibrational amplification and ultra-weak force sensing.
Findings
Topological phases characterized by a winding number related to non-Hermitian topology.
Predicted sensitivities for force detection as small as 1 yN/Hz^{1/2}.
Demonstrated tunability of force frequency detection via drive parameters.
Abstract
We consider a linear array of trapped ions subjected to local parametric modulation of the trapping potential and continuous laser cooling. In our model, the phase of the parametric modulation varies linearly along the array, breaking time-reversal symmetry and inducing non-trivial topological effects. The linear response to an external force is investigated with the Green's function formalism. We predict the appearance of topological amplification regimes in which the trapped ion array behaves as a directional amplifier of vibrational excitations. The emergence of topological phases is determined by a winding number related to non-Hermitian point-gap topology. Beyond its fundamental interests as a topological driven-dissipative system, our setup can be used for quantum sensing of ultra-weak forces and electric fields. We consider a scheme in which a trapped ion at one edge of the array…
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Taxonomy
TopicsQuantum Mechanics and Non-Hermitian Physics · Advanced Fiber Laser Technologies
