English

Ground-state Pulsed Cavity Electro-optics for Microwave-to-optical Conversion

Quantum Physics 2021-05-19 v1 Applied Physics

Abstract

In the development of quantum microwave-to-optical (MO) converters, excessive noise induced by the parametric optical drive remains a major challenge at milli-Kelvin temperatures. Here we study the extraneous noise added to an electro-optic transducer in its quantum ground state under an intense pulsed optical excitation. The integrated electro-optical transducer leverages the inherent Pockels effect of aluminum nitride microrings, flip-chip bonded to a superconducting resonator. Applying a pulsed optical drive with peak power exceeding the cooling power of the dilution refrigerator at its base temperature, we observe efficient bi-directional MO conversion, with near-ground state microwave thermal excitation (nˉe=0.09±0.06\bar{n}_\mathrm{e}=0.09\pm0.06). Time evolution study reveals that the residual thermal excitation is dominated by the superconductor absorption of stray light scattered off the chip-fiber interface. Our results shed light on suppressing microwave noise in a cavity electro-optic system under intense optical drive, which is an essential step towards quantum state transduction between microwave and optical frequencies.

Keywords

Cite

@article{arxiv.2010.11392,
  title  = {Ground-state Pulsed Cavity Electro-optics for Microwave-to-optical Conversion},
  author = {Wei Fu and Mingrui Xu and Xianwen Liu and Chang-Ling Zou and Changchun Zhong and Xu Han and Mohan Shen and Yuntao Xu and Risheng Cheng and Sihao Wang and Liang Jiang and Hong X. Tang},
  journal= {arXiv preprint arXiv:2010.11392},
  year   = {2021}
}
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