arXiv · 1501.02133
Optimized dynamical control of state transfer through noisy spin chains
Abstract
We propose a method of optimally controlling the tradeoff of speed and fidelity of state transfer through a noisy quantum channel (spin-chain). This process is treated as qubit state-transfer through a fermionic bath. We show that dynamical modulation of the boundary-qubits levels can ensure state transfer with the best tradeoff of speed and fidelity. This is achievable by dynamically optimizing the transmission spectrum of the channel. The resulting optimal control is robust against both static and fluctuating noise in the channel's spin-spin couplings. It may also facilitate transfer in the presence of diagonal disorder (on site energy noise) in the channel.
Explore related subjects
Keep this discovery
Analia Zwick, Gonzalo A. Alvarez, Guy Bensky, Gershon Kurizki. 2015-01-09. Optimized dynamical control of state transfer through noisy spin chains. https://doi.org/10.1088/1367-2630%2F16%2F6%2F065021
Cite the original work for its findings. Save a collection to share your selection of sources.