Rabi Oscillations in Systems with Small Anharmonicity
arXiv:cond-mat/0407080 · doi:10.1063/1.2178467
Abstract
When a two-level quantum system is irradiated with a microwave signal, in resonance with the energy difference between the levels, it starts Rabi oscillation between those states. If there are other states close, in energy, to the first two, the Rabi signal will also induce transition to those. Here, we study the probability of transition to the third state, in a three-level system, while a Rabi oscillation between the first two states is performed. We investigate the effect of pulse shaping on the probability and suggest methods for optimizing pulse shapes to reduce transition probability.
7 pages, 7 figures
References in corpus (7)
- Manipulating the Quantum State of an Electrical Circuit
- Coherent Quantum Dynamics of a Superconducting Flux Qubit
- Quantum oscillations in two coupled charge qubits
- Continuous Monitoring of Rabi Oscillations in a Josephson Flux Qubit
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Cited by in corpus (9)
- Engineering of nonclassical motional states in optomechanical systems
- Coherent oscillations in a superconducting tunable flux qubit manipulated without microwaves
- Quantum logic gates for superconducting resonator qudits
- Optimized single-qubit gates for Josephson phase qubits
- Rabi-like oscillations of an anharmonic oscillator: classical versus quantum interpretation
- Multilevel effects in the Rabi oscillations of a Josephson phase qubit
- Strong-field effects in the Rabi oscillations of the superconducting phase qubit
- Multi-frequency control pulses for multi-level superconducting quantum circuits
- A tunable rf SQUID manipulated as flux and phase qubit