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quant-ph2026

All-Optical Universal Control of Hyperfine Qudits in Trapped Neutral Atoms

Johannes K. Krondorfer, Matthias Diez, Andreas Kruckenhauser +1

Quantum systems with more than two levels so-called qudits offer increased computational density and reduced circuit complexity compared to qubit-based architectures, but a…

quant-ph2025

Single Qudit Control in Sr via Optical Nuclear Electric Resonance

Johannes K. Krondorfer, Matthias Diez, Andreas W. Hauser

Optical nuclear electric resonance (ONER) was recently proposed as a fast and robust single-qubit gate mechanism in Sr. Here, we demonstrate through numerical simulations th…

quant-ph2025

Optical nuclear electric resonance as single qubit gate for trapped neutral atoms

Johannes K. Krondorfer, Sebastian Pucher, Matthias Diez +2

The precise control of nuclear spin states is crucial for a wide range of quantum technology applications. Here, we propose a fast and robust single-qubit gate in Sr, utiliz…

quant-ph2025

Nuclear Electric Resonance for Spatially-Resolved Spin Control via Pulsed Optical Excitation in the UV-Visible Spectrum

Johannes K. Krondorfer, Andreas W. Hauser

Nuclear electric resonance (NER) spectroscopy is currently experiencing a revival as a tool for nuclear spin-based quantum computing. Compared to magnetic or electric fields, local…

quant-ph2025

Optical Nuclear Electric Resonance in LiNa: Selective Addressing of Nuclear Spins Through Pulsed Lasers

Johannes K. Krondorfer, Matthias Diez, Andreas W. Hauser

Optical nuclear electric resonance (ONER), a recently proposed protocol for nuclear spin manipulation in atomic systems via short laser pulses with MHz repetition rate, exploits th…