Time-Optimal Universal Control of Two-Level Systems under Strong Driving
arXiv:1402.4234 · doi:10.1103/PhysRevB.89.245311
Abstract
We experimentally study the time-optimal construction of arbitrary single-qubit rotations under a single strong driving field of finite amplitude. Using radiation-dressed states of nitrogen vacancy centers in diamond, we realize a strongly-driven two-level system and achieve driving frequencies four times larger than its Larmor frequency. We implement time optimal universal rotations on this system, characterize their performance using quantum process tomography, and demonstrate a dual-axis ac magnetometry sequence with pulses at sub-Larmor time scales. Our results pave the way for applying fast qubit control and high-density pulse schemes in the fields of quantum information processing and quantum metrology.
7 pages, 5 figures
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Cited by in corpus (26)
- Introduction to Quantum Optimal Control for Quantum Sensing with Nitrogen-Vacancy Centers in Diamond
- Classical-driving-assisted quantum speed-up
- Experimental time-optimal universal control of spin qubits in solids
- High-Speed Driving of a Two-Level System
- Strong driving of a single spin using arbitrarily polarized fields
- Quantum optimal control of multi-level dissipative quantum systems with Reinforcement Learning
- Universal non-adiabatic control of small-gap superconducting qubits
- Breaking the rotating wave approximation for a strongly-driven, dressed, single electron spin
- Pulse design without rotating wave approximation
- Quantum dynamical speedup in correlated noisy channels
- Quantum control landscape for ultrafast generation of single-qubit phase shift quantum gates
- Robust population inversion in three-level systems by composite pulses
- Fast control of semiconductor qubits beyond the rotating-wave approximation
- Dissipative two-level systems under ultrastrong off-resonant driving
- Time-optimal Control of Independent Spin-1/2 Systems under Simultaneous Control
- Coherent manipulation of nuclear spins in the strong driving regime
- A general formulation of time-optimal quantum control and optimality of singular protocols
- Resonant single and multi-photon coherent transitions in a detuned regime
- Time-optimal universal quantum gates on superconducting circuits
- Time-optimal state transfer for an open qubit
- The possibility of direct observation of the Bloch-Siegert shift in coherent dynamics of multiphoton Raman transitions
- Quantum speed-up process of atom in dissipative cavity
- Emission spectrum of a qubit under its deep strong driving in the high-frequency dispersive regime
- Multipassage Landau-Zener tunneling oscillations in transverse/longitudinal dual dressing of atomic qubits
- Dissipative Rabi model for deep strong far-off-resonant driving
- Modulating quantum evolution of moving-qubit by using classical driving