English

Experimental Hamiltonian Learning of An 11-qubit Solid-State Quantum Spin Register

Quantum Physics 2020-01-08 v1

Abstract

Learning Hamiltonian of a quantum system is indispensable for prediction of the system dynamics and realization of high fidelity quantum gates. However, it is a significant challenge to efficiently characterize the Hamiltonian when its Hilbert space dimension grows exponentially with the system size. Here, we experimentally demonstrate an adaptive method to learn the effective Hamiltonian of an 11-qubit quantum system consisting of one electron spin and ten nuclear spins associated with a single Nitrogen-Vacancy center in a diamond. We validate the estimated Hamiltonian by designing universal quantum gates based on the learnt Hamiltonian parameters and demonstrate high-fidelity gates in experiment. Our experimental demonstration shows a well-characterized 11-qubit quantum spin register with the ability to test quantum algorithms and to act as a multi-qubit single node in a quantum network.

Keywords

Cite

@article{arxiv.1905.12248,
  title  = {Experimental Hamiltonian Learning of An 11-qubit Solid-State Quantum Spin Register},
  author = {P. -Y. Hou and L. He and F. Wang and X. -Z. Huang and W. -G. Zhang and X. -L. Ouyang and X. Wang and W. -Q. Lian and X. -Y. Chang and L. -M. Duan},
  journal= {arXiv preprint arXiv:1905.12248},
  year   = {2020}
}

Comments

13 pages, 6 figures

R2 v1 2026-06-23T09:30:54.368Z