Concatenated Control Sequences based on Optimized Dynamic Decoupling
arXiv:0810.5616 · doi:10.1103/PhysRevLett.102.120502
Abstract
Two recent developments in quantum control, concatenation and optimization of pulse intervals, are combined to yield a strategy to suppress unwanted couplings in quantum systems to high order. Longitudinal relaxation and transverse dephasing can be suppressed so that systems with a small splitting between their energy levels can be kept isolated from their environment. The required number of pulses grows exponentially with the desired order but is only the square root of the number needed if only concatenation is used. An approximate scheme even brings the number down to polynomial growth. The approach is expected to be useful for quantum information and for high-precision nuclear magnetic resonance.
4 pages, 1 figure, slightly modified incl. new abstract and title; to appear in Phys. Rev. Lett
References in corpus (7)
- Fault-Tolerant Quantum Dynamical Decoupling
- How to Enhance Dephasing Time in Superconducting Qubits
- Universality of Uhrig dynamical decoupling for suppressing qubit pure dephasing and relaxation
- Exact Results on Dynamical Decoupling by -Pulses in Quantum Information Processes
- Optimization of Short Coherent Control Pulses
- Generating Unexpected Spin Echoes in Dipolar Solids with Pi Pulses
- Numerical Analysis of Optimized Coherent Control Pulses