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Highly-Excited Rydberg Excitons in Synthetic Thin-Film Cuprous Oxide

Quantum Physics 2022-11-01 v1 Atomic Physics

Abstract

Cuprous oxide (Cu2{}_2O) has recently been proposed as a promising solid-state host for excitonic Rydberg states with large principal quantum numbers (nn), whose exaggerated wavefunction sizes (n2)\propto n^2) facilitate gigantic dipole-dipole (n4\propto n^4) and van der Waals (n11\propto n^{11}) interactions, making them an ideal basis for solid-state quantum technology. Synthetic, thin-film Cu2{}_2O samples are of particular interest because they can be made defect-free via carefully controlled fabrication and are, in principle, suitable for the observation of extreme single-photon nonlinearities caused by the Rydberg blockade. Here, we present spectroscopic absorption and photoluminescence studies of Rydberg excitons in synthetic Cu2{}_2O grown on a transparent substrate, reporting yellow exciton series up to n=7n = 7. We perform these studies at powers up to 2 mW and temperatures up to 150 K, the highest temperature where Rydberg series can be observed. These results open a new portal to scalable and integrable on-chip Rydberg-based quantum devices.

Keywords

Cite

@article{arxiv.2210.16416,
  title  = {Highly-Excited Rydberg Excitons in Synthetic Thin-Film Cuprous Oxide},
  author = {Jacob DeLange and Kinjol Barua and Val Zwiller and Stephan Steinhauer and Hadiseh Alaeian},
  journal= {arXiv preprint arXiv:2210.16416},
  year   = {2022}
}

Comments

10 pages, 5 figures