English

Spin emitters beyond the point dipole approximation in nanomagnonic cavities

Mesoscale and Nanoscale Physics 2020-12-10 v1 Optics Quantum Physics

Abstract

Control over transition rates between spin states of emitters is crucial in a wide variety of fields ranging from quantum information science to the nanochemistry of free radicals. We present an approach to drive a both electric and magnetic dipole-forbidden transition of a spin emitter by placing it in a nanomagnonic cavity, requiring a description of both the spin emitter beyond the point dipole approximation and the vacuum magnetic fields of the nanomagnonic cavity with a large spatial gradient over the volume of the spin emitter. We specifically study the SiV^- defect in diamond, whose Zeeman-split ground states comprise a logical qubit for solid-state quantum information processing, coupled to a magnetic nanoparticle serving as a model nanomagnonic cavity capable of concentrating microwave magnetic fields into deeply subwavelength volumes. Through first principles modeling of the SiV^- spin orbitals, we calculate the spin transition densities of magnetic dipole-allowed and -forbidden transitions and calculate their coupling rates to various multipolar modes of the nanomagnonic cavity. We envision using such a framework for quantum state transduction and state preparation of spin qubits at GHz frequency scales.

Keywords

Cite

@article{arxiv.2012.04662,
  title  = {Spin emitters beyond the point dipole approximation in nanomagnonic cavities},
  author = {Derek S. Wang and Tomáš Neuman and Prineha Narang},
  journal= {arXiv preprint arXiv:2012.04662},
  year   = {2020}
}

Comments

8 pages, 4 figures

R2 v1 2026-06-23T20:49:34.841Z