Observation of interaction induced blockade and local spin freezing in a NMR quantum simulator
arXiv:2005.04445 · doi:10.1103/PhysRevResearch.3.033035
Abstract
We experimentally emulate interaction induced blockade and local spin freezing in two and three qubit Nuclear Magnetic Resonance (NMR) architecture. These phenomena are identical to the Rydberg blockade and Rydberg biased freezing. In Rydberg blockade, the simultaneous excitation of two or more atoms is blocked due to the level shift induced by the strong Van der Waal's interaction. In such a strong interaction regime, one can also observe Rydberg biased freezing, wherein the dynamics is confined to a subspace, with the help of multiple drives with unequal amplitudes. Here we drive NMR qubits with specific transition-selective radio waves, while intermittently characterizing the quantum states via quantum state tomography. This not only allows us to track the population dynamics, but also helps to probe quantum correlations, by means of quantum discord, evolving under blockade and freezing phenomena. While, our work constitutes the first experimental simulations of these phenomena in the NMR platform, it is also the first experimental demonstration of Rydberg biased freezing. Moreover, these studies open up interesting quantum control perspectives in exploiting the above phenomena for entanglement generation as well as subspace manipulations.
9 pages, 6 figures
References in corpus (5)
- Many-Body Physics with Individually-Controlled Rydberg Atoms
- Coherent control of a single electron spin with electric fields
- Observation of Resonant Photon Blockade at Microwave Frequencies using Correlation Function Measurements
- Evidence for coherent collective Rydberg excitation in the strong blockade regime
- Evolution of Quantum Discord and its Stability in Two-Qubit NMR Systems
Cited by in corpus (5)
- Controlling NMR spin systems for quantum computation
- Maximally entangled Rydberg-atom pairs via Landau-Zener sweeps
- Properties of Krylov state complexity in qubit dynamics
- Quantum dynamics of spin-J particles in static and rotating magnetic fields: Entanglement resonances and kinks
- Tomographic entanglement indicators from NMR experiments