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Nature Physics· 2026Q1

Aharonov–Bohm interference in a $${\pmb{\mathbb{Z}}}_{\bf{2}}$$ lattice gauge theory on a hybrid qubit–oscillator quantum computer

Sebastian Saner, O. Băzăvan, D. J. Webb, G. Araneda et al.

Short summary

A hybrid qubit-oscillator quantum computer successfully demonstrated Aharonov–Bohm interference in a Z2 lattice gauge theory, showing the interplay between charge and flux.

AI-generated from the title and abstract; the full text is not read.

Key points

  • A Z2 lattice gauge theory was encoded using a hybrid qubit-oscillator trapped-ion quantum device.
  • Qubits represented gauge fields, and ion vibrational modes encoded bosonic matter fields.
  • Aharonov–Bohm interference was observed in a quasi-two-dimensional setup, demonstrating dynamical gauge fields encoding magnetic flux.
  • The experiment showed the interplay between charge and flux in the simulated lattice gauge theory.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Lattice gauge theories, which have both dynamical matter and gauge fields, are strongly coupled problems that lie beyond the reach of classical computation. Quantum simulations may provide a tractable approach for studying lattice gauge theories, but implementing gauge-invariant encodings and real-time evolution remains experimentally challenging. Here we demonstrate a resource-efficient encoding of a $${{\mathbb{Z}}}_{2}$$ Z 2 lattice gauge theory using a hybrid qubit–oscillator trapped-ion quantum device, with the qubits representing the gauge fields and the vibrational modes of the ions encoding the bosonic matter fields. We use synthetic dimensions to construct higher dimensional lattice geometries, and we combine digital and analogue techniques to prepare the initial states, realize the gauge-invariant real-time evolution and measure the relevant observables. After observing dynamics obeying Gauss’s law in a $${{\mathbb{Z}}}_{2}$$ Z 2 link, we extend this approach to a loop geometry formed by two qubits and two oscillators. In this quasi-two-dimensional set-up, we observe Aharonov–Bohm interference with dynamical gauge fields encoding the magnetic flux, thereby demonstrating the interplay between charge and flux. Our results establish a path for scalable quantum simulations of lattice gauge theories in higher dimensions.

The authors' abstract, as published at the source. Nature Physics, 2026 · DOI ↗

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Field: Atomic and Molecular Physics, and Optics

Atomic and Molecular Physics, and OpticsPhysics and Astronomy