English

Selective decoupling and Hamiltonian engineering in dipolar spin networks

Quantum Physics 2019-01-16 v1 Quantum Gases

Abstract

We present a protocol to selectively decouple, recouple, and engineer effective couplings in mesoscopic dipolar spin networks. In particular, we develop a versatile protocol that relies upon magic angle spinning to perform Hamiltonian engineering. By using global control fields in conjunction with a local actuator, such as a diamond Nitrogen Vacancy center located in the vicinity of a nuclear spin network, both global and local control over the effective couplings can be achieved. We show that the resulting effective Hamiltonian can be well understood within a simple, intuitive geometric picture, and corroborate its validity by performing exact numerical simulations in few-body systems. Applications of our method are in the emerging fields of two-dimensional room temperature quantum simulators in diamond platforms, as well as in dipolar coupled polar molecule networks.

Keywords

Cite

@article{arxiv.1710.03987,
  title  = {Selective decoupling and Hamiltonian engineering in dipolar spin networks},
  author = {Ashok Ajoy and Ulf Bissbort and Dario Poletti and Paola Cappellaro},
  journal= {arXiv preprint arXiv:1710.03987},
  year   = {2019}
}

Comments

5 Pages + Appendix

R2 v1 2026-06-22T22:09:58.429Z