English

Quantum Information Processing with Quantum Zeno Many-Body Dynamics

Quantum Physics 2010-02-11 v2

Abstract

We show how the quantum Zeno effect can be exploited to control quantum many-body dynamics for quantum information and computation purposes. In particular, we consider a one dimensional array of three level systems interacting via a nearest-neighbour interaction. By encoding the qubit on two levels and using simple projective frequent measurements yielding the quantum Zeno effect, we demonstrate how to implement a well defined quantum register, quantum state transfer on demand, universal two-qubit gates and two-qubit parity measurements. Thus, we argue that the main ingredients for universal quantum computation can be achieved in a spin chain with an always-on and constant many-body Hamiltonian. We also show some possible modifications of the initially assumed dynamics in order to create maximally entangled qubit pairs and single qubit gates.

Keywords

Cite

@article{arxiv.0801.1959,
  title  = {Quantum Information Processing with Quantum Zeno Many-Body Dynamics},
  author = {Alex Monras and Oriol Romero-Isart},
  journal= {arXiv preprint arXiv:0801.1959},
  year   = {2010}
}

Comments

13 pages, 8 figures. Significantly extended, including two-qubit gates and parity measurements. To appear in Quantum Information & Computation

R2 v1 2026-06-21T10:02:26.744Z