Observation of period doubling in a strongly driven single spin system in diamond
ORAL
Abstract
Unraveling the quantum dynamics in non-equilibrium settings remains a significant challenge in modern physical sciences. Systems driven out of equilibrium can exhibit a diverse range of phenomena, including self-organized synchronization and dynamical phase transitions. In this work, we report the observation of period doubling in driven spin systems utilizing a single nitrogen-vacancy (NV) center in diamond. The dynamics of a two-level system, modeled by a standard Hamiltonian driven by a linearly polarized sinusoidal field, demonstrate period doubling under specific driving conditions. In the Rabi regime, the spin population is approximately described by sinusoidal oscillations at the Rabi frequency; however, stronger drive amplitudes lead to deviations from this behavior, revealing phenomena such as period n-tupling. We specifically observe period doubling in the dynamics of a single NV center driven at resonance with the lowest period doubling amplitude. This study provides valuable insights into manipulating quantum states in driven spin systems and presents a potential pathway for controlling quantum systems with periodic drive fields.
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Publication: Choi, S., Choi, J., Landig, R. et al. Observation of discrete time-crystalline order in a disordered dipolar many-body system. Nature 543, 221–225 (2017)<br><br>Rovny, Jared and Blum, Robert L. and Barrett, Sean E. Observation of Discrete-Time-Crystal Signatures in an Ordered Dipolar Many-Body System. Phys. Rev. Lett. 120, 180603 (2018)
Presenters
Raul Gonzalez Cornejo
Institute for Quantum Optics, Ulm University
Authors
Raul Gonzalez Cornejo
Institute for Quantum Optics, Ulm University
Dhruv Deshmukh
Institute for Complex Quantum Systems, Ulm University
Roberto Sailer
Institute for Quantum Optics, Ulm University
Ressa S Said
Institute for Quantum Optics, Ulm University
Joachim Ankerhold
University Ulm, Institute for Complex Quantum Systems, Ulm University
Fedor Jelezko
Ulm University, Institute for Quantum Optics, Ulm University