Two and four-level systems in magnetic fields restricted in time
arXiv:0803.0299 · doi:10.1007/s13538-011-0001-x
Abstract
We describe some new exact solutions for two- and four-level systems. In all the cases, external fields have a restricted behavior in time. First, we consider two types of new solutions for one-spin equation, one of them is in a external magnetic field that acts during a finite time interval. A new solution for two interacting spins is found in the case when the field difference between the external fields in each spin vary adiabatically, vanishing on the time infinity. The latter system can be identified with a quantum gate realized by two coupled quantum dots. The probability of the Swap operation for such a gate can be explicitly expressed in terms of special functions. Using the obtained expressions, we construct plots for the Swap operation for some parameters of the external magnetic field and interaction function.
12 pages, 3 figures
References in corpus (8)
- A practical scheme for quantum computation with any two-qubit entangling gate
- Electron Spins in Artificial Atoms and Molecules for Quantum Computing
- g-factor engineering and control in self-assembled quantum dots
- Spin equation and its solutions
- Time Evolution of Two-Level Systems Driven by Periodic Fields
- Two interacting spins in external fields. Four-level systems
- Two-level systems: exact solutions and underlying pseudo-supersymmetry
- Four-level systems and a universal quantum gate