Department ofPhysics of Complex Systems
Quantum Frontiers

Prof. Roee Ozeri

Single atomic ions, held in vacuum and laser-cooled, as a laboratory for quantum information and precision physics

01 / Research

Research

The group studies individual atomic ions confined in radio-frequency electromagnetic traps and cooled with laser light to near their motional ground state. In this exceptionally clean and well-isolated setting, the internal electronic states and the quantized collective motion of the ions can be coherently controlled with laser and microwave fields, making trapped ions one of the most precisely manipulable quantum systems available. The work spans the coherent control of single qubits and small ion strings, the engineering of entanglement through the shared motional modes, and the characterization of the noise processes that ultimately limit coherence.

These capabilities serve two broad goals. As a platform for quantum information, trapped ions support high-fidelity quantum logic gates and serve as a testbed for understanding and suppressing decoherence. As precision instruments, the same long-lived atomic states enable searches for tiny shifts in transition frequencies that probe fundamental symmetries, possible variation of fundamental constants, and physics beyond the Standard Model. A further line of work brings cold ions into contact with ultracold neutral atoms, opening a controlled regime for studying atom-ion collisions, chemistry, and the interplay between charged and neutral quantum matter.

Linear Paul ion trapsLaser cooling and sideband coolingOptical and microwave qubit controlSingle-ion fluorescence detectionHybrid atom-ion systemsQuantum process tomography
Quantum logic and entanglementRealizing high-fidelity single- and two-qubit gates on trapped-ion qubits using their shared motional modes as a quantum bus.
Decoherence and noise spectroscopyCharacterizing the magnetic, electric, and motional noise that limits qubit coherence and developing protocols to measure and mitigate it.
Precision tests of fundamental physicsUsing narrow optical transitions in single ions to search for violations of fundamental symmetries and for physics beyond the Standard Model.
Ultracold atom-ion interactionsImmersing a single laser-cooled ion in an ultracold neutral gas to study collisions, charge transport, and chemistry in the quantum regime.
Quantum optics with single ionsExploring light-matter coupling, photon scattering, and coherent dynamics of individual ions interacting with engineered optical fields.
02 / People

Group members

Principal investigatorProf. Roee Ozeri
Early-career scientistsPostdoctoral researchers
Doctoral researchersPhD students
Master's researchersMSc students

The named roster for each group is generated from the People directory, filtered by this group.

03 / Output

Selected publications

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Design