Shortcuts to adiabaticity for an ion in a rotating radially-tight trap
arXiv:1509.03457 · doi:10.1088/1367-2630/18/4/043014
Abstract
We engineer the fast rotation of a quantum particle confined in an effectively one-dimensional, harmonic trap, for a predetermined rotation angle and time, avoiding final excitation. Different schemes are proposed with different speed limits that depend on the control capabilities. We also make use of trap rotations to create squeezed states without manipulating the trap frequencies.
11 pages, 6 figures
References in corpus (6)
- Complete methods set for scalable ion trap quantum information processing
- Fast atomic transport without vibrational heating
- Transport dynamics of single ions in segmented microstructured Paul trap arrays
- A proposal for a scalable universal bosonic simulator using individually trapped ions
- Deterministic reordering of 40Ca+ ions in a linear segmented Paul trap
- Fast expansions and compressions of trapped-ion chains
Cited by in corpus (12)
- Shortcuts to adiabaticity: concepts, methods, and applications
- Reinforcement learning approach to non-equilibrium quantum thermodynamics
- Noise Resistant Quantum Control Using Dynamical Invariants
- Invariant-based inverse engineering of crane control parameters
- Fast quantum control in dissipative systems using dissipationless solutions
- Fast shuttling of a particle under weak spring-constant noise of the moving trap
- Dynamical normal modes for time-dependent Hamiltonians in two dimensions
- Fast state and trap rotation of a particle in an anisotropic potential
- Transient Non-Confining Potentials for Speeding Up a Single Ion Heat Pump
- Inverse engineering of fast state transfer among coupled oscillators
- Optimal control with a multidimensional quantum invariant
- Non-Classicality and Non-adiabaticity in a Single Trapped Ion