14,215 research outputs found
Radio-frequency spectroscopy of weakly bound molecules in spin-orbit coupled atomic Fermi gases
We investigate theoretically radio-frequency spectroscopy of weakly bound
molecules in an ultracold spin-orbit-coupled atomic Fermi gas. We consider two
cases with either equal Rashba and Dresselhaus coupling or pure Rashba
coupling. The former system has been realized very recently at Shanxi
University [Wang et al., arXiv:1204.1887] and MIT [Cheuk et al.,
arXiv:1205.3483]. We predict realistic radio-frequency signals for revealing
the unique properties of anisotropic molecules formed by spin-orbit coupling.Comment: 11 pages, 7 figure
The linear and nonlinear Jaynes-Cummings model for the multiphoton transition
With the Jaynes-Cummings model, we have studied the atom and light field
quantum entanglement of multiphoton transition, and researched the effect of
initial state superposition coefficient , the transition photon number
, the quantum discord and the nonlinear coefficient on the
quantum entanglement degrees. We have given the quantum entanglement degrees
curves with time evolution, and obtained some results, which should have been
used in quantum computing and quantum information.Comment: arXiv admin note: text overlap with arXiv:1404.0821, arXiv:1205.0979
by other author
Deterministic CNOT gate and entanglement swapping for photonic qubits using a quantum-dot spin in a double-sided optical microcavity
We propose a deterministic and scalable scheme to construct a two-qubit
controlled-NOT (CNOT) gate and realize entanglement swapping between photonic
qubits using a quantum-dot (QD) spin in a double-sided optical microcavity. The
scheme is based on spin selective photon reflection from the cavity and can be
achieved in a nondestructive and heralded way. We assess the feasibility of the
scheme and show that the scheme can work in both the weak coupling and the
strong coupling regimes. The scheme opens promising perspectives for
long-distance photonic quantum communication and distributed quantum
information processing.Comment: 18 pages, 5 figures; to appear in Physics Letters
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