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Isotopically enriched epitaxial CaWO$_{4}$ thin films for Er$^{3+}$ spin-photon quantum interfaces

Quantum Physics 2026-04-28 v1 Materials Science

Abstract

Rare earth ion (REI)-doped oxide thin films are attractive for the application of quantum interconnects due to their stable optical levels and scalability13^{1-3}. Among them, Er3+^{3+} doped CaWO4_{4} is promising because it possesses narrow optical linewidth transitions and a long spin coherence time46^{4-6}. The electron spin coherence is limited at high temperatures by paramagnetic impurities and by the presence of the 14.3% 183^{183}W nuclear spin. To further increase the spin coherence time at millikelvin temperatures, where the paramagnetic impurities are frozen out, our approach is to synthesize chemically and isotopically purified thin films as a host material. We first grow non-isotopically enriched Er3+^{3+} doped CaWO4_{4} thin films, which exhibit a 214(13) MHz photoluminescence (PL) inhomogeneous linewidth, indicating the thin film has high crystalline quality. We then grow isotopically enriched CaWO4_{4} thin films using an isotopically purified 186^{186}WO3_{3} source. Time of flight secondary ion mass spectrometry (ToF-SIMS) was used to measure the relative concentration of W isotopes. 183^{183}W, the only W isotope that has a net nuclear spin and is the major cause of spin decoherence, was at a relative abundance of 1.2%, a factor of 10 lower than natural abundance. We also observed PL emission from single ions after integrating nano-photonic devices with the thin film. These results establish isotopically engineered CaWO4_{4} thin films as a promising platform for future studies of nuclear-spin-limited coherence and for scalable rare-earth-ion-based quantum nanophotonic devices.

Keywords

Cite

@article{arxiv.2604.24582,
  title  = {Isotopically enriched epitaxial CaWO$_{4}$ thin films for Er$^{3+}$ spin-photon quantum interfaces},
  author = {Hanlin Tang and Kidae Shin and Ashwin K. Boddeti and Sebastian P. Horvath and Adam Turflinger and Joseph Alexander and Jeffrey A. Dhas and Zihua Zhu and Shuhang Pan and Jeff D. Thompson and Yingge Du and Frederick J. Walker and Charles H. Ahn},
  journal= {arXiv preprint arXiv:2604.24582},
  year   = {2026}
}
R2 v1 2026-07-01T12:37:26.305Z