Quantum computing of molecular magnet Mn
arXiv:cond-mat/0201023 · doi:10.1103/PhysRevA.66.010301
Abstract
Quantum computation in molecular magnets is studied by solving the time-dependent Schrödinger equation numerically. Following Leuenberger and Loss (Nature (London) 410, 789(2001)), an external oscillating magnetic field is applied to populate and manipulate the spin coherent states in molecular magnet Mn. The conditions to realize parallel recording and reading data bases of Grover algorithsm in molecular magnets are discussed in details. It is found that an accurate duration time of magnetic pulse as well as the amplitudes are required to design the device of quantum computing.
3 pages, 1 figure
Cited by in corpus (6)
- Photon-assisted tunneling in a Fe8 Single-Molecule Magnet
- Spin-bias driven magnetization reversal and nondestructive detection in a single molecular magnet
- All-Electrical Quantum Computation with Mobile Spin Qubits
- Effects of Intrinsic Spin-Relaxation in Molecular Magnets on Current-Induced Magnetic Switching
- Quantum tunneling of two coupled single-molecular magnets
- Intrinsic spin-relaxation induced negative tunnel magnetoresistance in a single-molecule magnet