All-Resonant Control of Superconducting Resonators
arXiv:1208.3657 · doi:10.1103/PhysRevLett.109.210501
Abstract
An all-resonant method is proposed to control the quantum state of superconducting resonators. This approach uses a tunable artificial atom linearly coupled to resonators, and allows for efficient routes to Fock state synthesis, qudit logic operations, and synthesis of NOON states. This resonant approach is theoretically analyzed, and found to perform signficantly better than existing proposals using the same technology.
4 + epsilon pages, plus supplemental material
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- Fast and simple scheme for generating NOON states of photons in circuit QED
- Qudit Quantum Computation in the Jaynes-Cummings Model
- Polarization entanglement purification of nonlocal microwave photons based on the cross-Kerr effect in circuit QED
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- Efficient scheme for generation of photonic NOON states in circuit QED
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- Generation of Photonic Matrix Product States with Rydberg Atomic Arrays
- Entanglement concentration of microwave photons based on Kerr effect in circuit QED
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- Quantum State Synthesis of Superconducting Resonators
- Universal distributed quantum computing on superconducting qutrits with dark photons
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- Higher-Dimensional Bell Inequalities with Noisy Qudits
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- Dynamics and multiqubit entanglement in distant resonators
- Effective dynamics and quantum state engineering by periodic kicks
- Quantum Fourier Transform in Oscillating Modes
- Constructing Qudits from Infinite Dimensional Oscillators by Coupling to Qubits
- Quantum state transfer and controlled-phase gate on one-dimensional superconducting resonators assisted by a quantum bus