Published June 2003 | Version v1
Journal article

Method for modeling decoherence on a quantum-information processor

  • 1. Department of Physics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139 (United States)
  • 2. Department of Nuclear Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts, 02139 (United States)
  • 3. Departamento de Fisica, 'Juan Jose Giambiagi', Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, RA-1428 Buenos Aires, DF (Argentina)

Description

We develop and implement a method for modeling decoherence processes on an N-dimensional quantum system that requires only an N2-dimensional quantum environment and random classical fields. This model offers the advantage that it may be implemented on small quantum-information processors in order to explore the intermediate regime between semiclassical and fully quantum models. We consider in particular σzσz system-environment couplings which induce coherence (phase) damping, although the model is directly extendable to other coupling Hamiltonians. Effective, irreversible phase damping of the system is obtained by applying an additional stochastic Hamiltonian on the environment alone, periodically redressing it and thereby irreversibliy randomizing the system phase information that has leaked into the environment as a result of the coupling. This model is exactly solvable in the case of phase damping, and we use this solution to describe the model's behavior in some limiting cases. In the limit of small stochastic phase kicks the system's coherence decays exponentially at a rate that increases linearly with the kick frequency. In the case of strong kicks we observe an effective decoupling of the system from the environment. We present a detailed implementation of the method on a nuclear magnetic resonance quantum-information processor

Additional details

Publishing Information

Journal Title
Physical Review. A
Journal Volume
67
Journal Issue
6
Journal Page Range
p. 062316-062316.11
ISSN
1050-2947
CODEN
PLRAAN

Optional Information

Notes
(c) 2003 The American Physical Society