English

Engineering high Pockels coefficients in thin-film strontium titanate for cryogenic quantum electro-optic applications

Optics 2025-10-28 v4 Quantum Physics

Abstract

Materials which exhibit the Pockels effect are notable for their strong electro-optic interaction and rapid response times and are therefore used extensively in classical electro-optic components for data and telecommunication applications. Yet many materials optimized for room-temperature operation see their Pockels coefficients at cryogenic temperatures significantly reduced - a major hurdle for emerging quantum technologies which have even more rigorous demands than their classical counterpart. A noted example is BaTiO3\mathrm{BaTiO_3}, which features the strongest effective Pockels coefficient at room temperature, only to see it reduced to a third (i.e. reff\mathrm{r_{eff}} \approx 170 pm/V) at a few Kelvin. Here, we show that this behaviour is not inherent and can even be reversed: Strontium titanate (SrTiO3\mathrm{SrTiO_3}), a material normally not featuring a Pockels coefficient, can be engineered to exhibit an reff\mathrm{r_{eff}} of 345 pm/V at cryogenic temperatures - a record value in any thin-film electro-optic material. By adjusting the stoichiometry, we can increase the Curie temperature and realise a ferroelectric phase that yields a high Pockels coefficient, yet with limited optical losses - on the order of decibels per centimetre. Our findings position SrTiO3\mathrm{SrTiO_3} as one of the most promising materials for cryogenic quantum photonics applications.

Keywords

Cite

@article{arxiv.2502.14349,
  title  = {Engineering high Pockels coefficients in thin-film strontium titanate for cryogenic quantum electro-optic applications},
  author = {Anja Ulrich and Kamal Brahim and Andries Boelen and Michiel Debaets and Conglin Sun and Yishu Huang and Sandeep Seema Saseendran and Marina Baryshnikova and Paola Favia and Thomas Nuytten and Stefanie Sergeant and Kasper Van Gasse and Bart Kuyken and Kristiaan De Greve and Clement Merckling and Christian Haffner},
  journal= {arXiv preprint arXiv:2502.14349},
  year   = {2025}
}

Comments

Main text 7 pages, including supplement information 31 pages; v2:one reference updated; v3: typo corrected; v4: reference added