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91探花
Atomic and Laser Physics
Credit: Jack Hobhouse

Sebastian Saner

Visitor

Research theme

  • Quantum information and computation

Sub department

  • Atomic and Laser Physics

Research groups

  • Ion trap quantum computing
sebastian.saner@physics.ox.ac.uk
Clarendon Laboratory
  • About
  • Publications

Real-Time Observation of Aharonov-Bohm Interference in a $\mathbb{Z}_2$ Lattice Gauge Theory on a Hybrid Qubit-Oscillator Quantum Computer

(2025)

Authors:

S Saner, O B脛聝z脛聝van, DJ Webb, G Araneda, CJ Ballance, R Srinivas, DM Lucas, A Berm脙潞dez

Multipartite Mixed-Species Entanglement over a Quantum Network

(2025)

Authors:

D Main, P Drmota, EM Ainley, A Agrawal, D Webb, S Saner, O Bazavan, BC Nichol, R Srinivas, DP Nadlinger, G Araneda, DM Lucas

Towards quantum computing Feynman diagrams in hybrid qubit-oscillator devices

(2024)

Authors:

S Varona, S Saner, O B膬z膬van, G Araneda, G Aarts, A Bermudez

Generating arbitrary superpositions of nonclassical quantum harmonic oscillator states

(2024)

Authors:

S Saner, O B膬z膬van, DJ Webb, G Araneda, DM Lucas, CJ Ballance, R Srinivas

Synthetic Z 2 gauge theories based on parametric excitations of trapped ions

Communications Physics Nature Research 7:1 (2024) 229

Authors:

Oana B菐z菐van, Sebastian Saner, Emanuelle Tirrito, Gabriel Araneda, Raghavendra Srinivas, Alejandro Bermudez

Abstract:

Resource efficient schemes for the quantum simulation of lattice gauge theories can benefit from hybrid encodings of gauge and matter fields that use the native degrees of freedom, such as internal qubits and motional phonons in trapped-ion devices. We propose to use a parametric scheme to induce a tunneling of the phonons conditioned to the internal qubit state which, when implemented with a single trapped ion, corresponds to a minimal Z2 gauge theory. To evaluate the feasibility of this scheme, we perform numerical simulations of the state-dependent tunneling using realistic parameters, and identify the leading sources of error in future experiments. We discuss how to generalize this minimal case to more complex settings by increasing the number of ions, moving from a single link to a Z2 plaquette, and to an entire Z2 chain. We present analytical expressions for the gauge-invariant dynamics and the corresponding confinement, which are benchmarked using matrix product state simulations.

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