Optimal remote restoring of quantum states in communication lines via local magnetic field
arXiv:2401.09569 · doi:10.1088/1402-4896/ad16cc
Abstract
Optimal state transport across spin chains, which are proposed as quantum wires for information transfer in solid state quantum architectures, is an important topic for quantum technologies. In this work, we study {the remote restoring of a quantum state transferred along a spin chain.} The structural state-restoring technique provides proportionality between the appropriate elements of the density matrices of the initial sender state and receiver state at some time instant. We develop a {remote} state-restoring protocol which uses an inhomogeneous magnetic field with step-wise time-dependent Larmor frequencies as the state-control tool. For simulating the multiparametric Hamiltonian we use two approximating models. First model is based on the Trotter-Suzuki method, while the second model is based on using short pulses of high intensity. In both cases we estimate the accuracy of the approximation and find the optimal restoring parameters (Larmor frequencies) of the protocol which maximize the coefficients in the proportionality for spin chains of various lengths.
29 pagwes, 8 figures
References in corpus (17)
- Experimental quantum teleportation
- Remote state preparation: arbitrary remote control of photon polarization
- The Propagation of Quantum Information Through a Spin System
- Spin Chains as Perfect Quantum State Mirrors
- Communication at the quantum speed limit along a spin chain
- Perfect state transfer in long-range interacting spin chains
- Fast, high fidelity information transmission through spin chain quantum wires
- GRAPE optimization for open quantum systems with time-dependent decoherence rates driven by coherent and incoherent controls
- Coherent control of a nuclear spin via interactions with a rare-earth ion in the solid-state
- Quantum control landscape for ultrafast generation of single-qubit phase shift quantum gates
- Optimal State Manipulation for a Two-Qubit System Driven by Coherent and Incoherent Controls
- Complete structural restoring of transferred multi-qubit quantum state
- Remote creation of a one-qubit mixed state through a short homogeneous spin-1/2 chain
- Dynamics of Spin Helices in the One-Dimensional Model
- Transfer of 0-order coherence matrix along spin-1/2 chain
- Understanding the propagation of excitations in quantum spin chains with different kind of interactions
- Remote restoring of -excitation states and concurrence scaling