Perturbation Theory for Quantum Computation with Large Number of Qubits
arXiv:quant-ph/0104025 · doi:10.1103/PhysRevA.65.012321
Abstract
We describe a new and consistent perturbation theory for solid-state quantum computation with many qubits. The errors in the implementation of simple quantum logic operations caused by non-resonant transitions are estimated. We verify our perturbation approach using exact numerical solution for relatively small (L=10) number of qubits. A preferred range of parameters is found in which the errors in processing quantum information are small. Our results are needed for experimental testing of scalable solid-state quantum computers.
8 pages RevTex including 2 figures
Cited by in corpus (6)
- Tackling Systematic Errors in Quantum Logic Gates with Composite Rotations
- General-Purpose Parallel Simulator for Quantum Computing
- Efficient and robust initialization of a qubit register with fermionic atoms
- Dynamical fidelity of a solid-state quantum computation
- Creation of entanglement in a scalable spin quantum computer with long-range dipole-dipole interaction between qubits
- Influence of qubit displacements on quantum logic operations in a silicon-based quantum computer with constant interaction