English

Fast nuclear-spin gates and electrons-nuclei entanglement of neutral atoms in weak magnetic fields

Quantum Physics 2023-12-12 v1 Applied Physics Atomic Physics Optics

Abstract

We present fast Rydberg-mediated entanglement involving nuclear spins of divalent atoms with 171^{171}Yb as an example. First, we show a nuclear-spin controlled phase gate of an arbitrary phase realizable either with two laser pulses when assisted by Stark shifts, or with three pulses. Second, we propose to create a state (cceΦn+ΦeΨn)/2(\lvert\text{cc}\rangle_{\text{e}} \otimes \lvert\Phi\rangle_{\text{n}} + \lvert\Phi\rangle_{\text{e}} \otimes \lvert\Psi\rangle_{\text{n}} )/\sqrt{2} entangled between the electrons~(e) and nuclear spins~(n) of two atoms, where Φ\lvert\Phi\rangle and Ψ\lvert\Psi\rangle are two orthogonal Bell states and ce\lvert \text{c}\rangle_{\text{e}} denotes the clock state. For want of a better term, it is called a Super Bell State for it mimics a ``large'' Bell state incorporating three ``smaller'' Bell states. Third, we show a protocol to create a three-atom state (3ccceΛn+WeGHZn)/2(\sqrt{3}\lvert\text{ccc}\rangle_{\text{e}} \otimes \lvert\Lambda\rangle_{\text{n}} + \lvert \text{W}\rangle_{\text{e}} \otimes \lvert \text{GHZ}\rangle_{\text{n}} )/2, where Λn\lvert\Lambda\rangle_{\text{n}} is a nuclear-spin state, We\lvert \text{W}\rangle_{\text{e}} is a W state in the ground-clock state space, and GHZn\lvert \text{GHZ}\rangle_{\text{n}} is the Greenberger-Horne-Zeilinger~(GHZ) state in the nuclear-spin state space. The four protocols possess high intrinsic fidelities, do not require single-site Rydberg addressing, and can be executed with large Ωm\Omega_{\text{m}} in a weak, Gauss-scale magnetic field for they involve Rydberg excitation of both nuclear-spin qubit states in each atom. The latter two protocols can enable measurement-based preparation of Bell, hyperentangled, and GHZ states.

Keywords

Cite

@article{arxiv.2212.05876,
  title  = {Fast nuclear-spin gates and electrons-nuclei entanglement of neutral atoms in weak magnetic fields},
  author = {Xiao-Feng Shi},
  journal= {arXiv preprint arXiv:2212.05876},
  year   = {2023}
}

Comments

19 pages, 11 figures