Entanglement of Polar Molecules in Pendular States (PREPRINT)

Abstract

In proposals for quantum computers using arrays of trapped ultracold polar molecules as qubits, a strong external field with appreciable gradient is imposed in order to prevent quenching of the dipole moments by rotation and to distinguish among the qubit sites. That field induces the molecular dipoles to undergo pendular oscillations, which markedly affect the qubit states and the dipole-dipole interaction. We evaluate entanglement of the pendular qubit states for two linear dipoles, characterized by pairwise concurrence, as a function of the molecular dipole moment and rotational constant, strengths of the external field and the dipole-dipole coupling, and ambient temperature. We also evaluate a key frequency shift, 4!, produced by the dipole-dipole interaction. Under conditions envisioned for the proposed quantum computers, both the concurrence and 4! become very small for the ground eigenstate. In principle, such weak entanglement can be sufficient for operation of logic gates, provided the resolution is high enough to detect the 4! shift unambiguously. In practice, however, for many candidate polar molecules it appears a challenging task to attain adequate resolution. Simple approximate formulas fitted to our numerical results are provided from which the concurrence and 4! shift can be obtained in terms of unitless reduced variables.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
Feb 28, 2011
Accession Number
ADA538732

Entities

People

  • Bretislav Friedrich
  • Dudley Herschback
  • Qi Wei
  • Sabre Kais

Organizations

  • Texas A&M University

Tags

DTIC Thesaurus Topics

  • Computers
  • Computing Devices
  • Couplings
  • Dipole Moments
  • Electric Fields
  • Frequency
  • Frequency Shift
  • Ground State
  • Information Processing
  • Military Research
  • Molecules
  • Optical Lattices
  • Quantum Computers
  • Quantum Computing
  • Quantum Information
  • Quantum Information Science
  • Spectroscopy

Fields of Study

  • Physics

Readers

  • Molecular Photonics/Laser Physics
  • Plasma Physics / Magnetohydrodynamics
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.

Technology Areas

  • Quantum Computing
  • Quantum Science - Quantum Dots