Fault-tolerant breathing pattern in optical lattices as a dynamical quantum memory
arXiv:1407.0596 · doi:10.1103/PhysRevA.89.042326
Abstract
Proposals for quantum information processing often require the development of new quantum tech- nologies. However, here we build quantum memory by ultracold atoms in one-dimensional optical lattices with existing state-of-the-art technology. Under a parabolic external field, we demonstrate that an arbitrary initial state at an end of the optical lattices can time-evolve and revive, with very high fidelity, at predictable discrete time intervals. Physically, the parabolic field, can catalyze a breathing pattern. The initial state is memorized by the pattern and can be retrieved at any of the revival time moments. In comparison with usual time-independent memory, we call this a dynamical memory. Furthermore, we show that the high fidelity of the quantum state at revival time moments is fault-tolerant against the fabrication defects and even time-dependent noise.
References in corpus (12)
- Many-Body Physics with Ultracold Gases
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- Experimental demonstration of quantum memory for light
- Single-Spin Addressing in an Atomic Mott Insulator
- Experimental demonstration of single-site addressability in a two-dimensional optical lattice
- Exact Results on Dynamical Decoupling by -Pulses in Quantum Information Processes
- High fidelity quantum gates via dynamical decoupling
- Interference pattern and visibility of a Mott insulator
- Concatenated Control Sequences based on Optimized Dynamic Decoupling
- Master Equation and Control of an Open Quantum System with Leakage
- Local Manipulation of Nuclear Spin in a Semiconductor Quantum Well
- Effect of perturbations on information transfer in spin chains