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Quantum walk of a trapped ion in phase space

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abstract

We implement the proof of principle for the quantum walk of one ion in a linear ion trap. With a single-step fidelity exceeding 0.99, we perform three steps of an asymmetric walk on the line. We clearly reveal the differences to its classical counterpart if we allow the walker/ion to take all classical paths simultaneously. Quantum interferences enforce asymmetric, non-classical distributions in the highly entangled degrees of freedom (of coin and position states). We theoretically study and experimentally observe the limitation in the number of steps of our approach, that is imposed by motional squeezing. We propose an altered protocol based on methods of impulsive steps to overcome these restrictions, in principal allowing to scale the quantum walk to several hundreds of steps.

fields

quant-ph 1

years

2024 1

verdicts

UNVERDICTED 1

representative citing papers

Mobility edges in pseudo-unitary quasiperiodic quantum walks

quant-ph · 2024-11-25 · unverdicted · novelty 7.0

A pseudo-unitary quasiperiodic quantum walk model exhibits a novel mobility edge sharply dividing metallic and insulating phases plus a second transition unique to discrete time, with PT-symmetry breaking quantified by spectral winding number.

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  • Mobility edges in pseudo-unitary quasiperiodic quantum walks quant-ph · 2024-11-25 · unverdicted · none · ref 83 · internal anchor

    A pseudo-unitary quasiperiodic quantum walk model exhibits a novel mobility edge sharply dividing metallic and insulating phases plus a second transition unique to discrete time, with PT-symmetry breaking quantified by spectral winding number.