Infrared-dressed entanglement of cold open-shell polar molecules for universal matchgate quantum computing
arXiv:1402.0381 · doi:10.1088/1367-2630/16/7/075001
Abstract
Implementing a scalable quantum information processor using polar molecules in optical lattices requires precise control over the long-range dipole-dipole interaction between molecules in selected lattice sites. We present here a scheme using trapped open-shell polar molecules that allows dipolar exchange processes between nearest and next-nearest neighbors to be controlled to construct a generalized transverse Ising spin Hamiltonian with tunable , and couplings in the rotating frame of the driving lasers. The scheme requires a moderately strong bias magnetic field with near-infrared light to provide local tuning of the qubit energy gap, and mid-infrared pulses to perform rotational state transfer via stimulated Raman adiabatic passage. No interaction between qubits is present in the absence of the infrared driving. We analyze the fidelity of the resulting two-qubit matchgate, and demonstrate its robustness as a function of the driving parameters. We discuss a realistic application of the system for universal matchgate quantum computing in optical lattices.
18 pages, 4 figures
References in corpus (20)
- Quantum Computing
- Ultracold atomic gases in optical lattices: mimicking condensed matter physics and beyond
- A High Phase-Space-Density Gas of Polar Molecules
- Scalable multi-particle entanglement of trapped ions
- Quantum computing with trapped ions
- Single-Spin Addressing in an Atomic Mott Insulator
- Controlled exchange interaction between pairs of neutral atoms in an optical lattice
- Simulating chemistry using quantum computers
- Ultracold heteronuclear molecules in a 3D optical lattice
- Schemes for robust quantum computation with polar molecules
- Matchgates and classical simulation of quantum circuits
- Realizable Hamiltonians for Universal Adiabatic Quantum Computers
- Quantum Hamiltonian Complexity
- Collisional stability of fermionic Feshbach molecules
- Topological phases in ultracold polar-molecule quantum magnets
- Controlling Polar Molecules in Optical Lattices
- External field control of collective spin excitations in an optical lattice of molecules
- Tunable disorder in a crystal of cold polar molecules
- Quantum pump for counter-circulations in a spinor Bose-Einstein condensate
- Comparative study of the rovibrational properties of heteronuclear alkali dimers in electric fields
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