Chemically vapor deposited Eu3+:Y2O3 thin films as a material platform for quantum technologies

被引:14
|
作者
Harada, Nao [1 ]
Ferrier, Alban [1 ,2 ]
Serrano, Diana [1 ]
Persechino, Mauro [1 ]
Briand, Emrick [3 ]
Bachelet, Romain [4 ]
Vickridge, Ian [3 ]
Ganem, Jean-Jacques [3 ]
Goldner, Philippe [1 ]
Tallaire, Alexandre [1 ]
机构
[1] PSL Univ, Inst Rech Chim Paris, CNRS, Chim ParisTech, F-75005 Paris, France
[2] Sorbonne Univ, Fac Sci & Ingn, UFR 933, F-75005 Paris, France
[3] UPMC Univ Paris 6, CNRS, UMR 7588, INSP,Sorbonne Univ, Paris, France
[4] Univ Lyon, UMR 5270, Ecole Cent Lyon, CNRS,INL, F-69134 Ecully, France
关键词
ENERGY-TRANSFER; Y2O3; FILMS; EARTH; SILICATE; OXIDES; IONS;
D O I
10.1063/5.0010833
中图分类号
O59 [应用物理学];
学科分类号
摘要
Rare earth ions hosted in solids are good candidates for quantum technologies due to their chemical stability and optical and spin transitions exhibiting long coherence lifetimes. While bulk oxide crystals are usually the preferred host material, the development of a scalable silicon-compatible thin film platform would be desirable. In this paper, we report on the growth of Y2(1-x)Eu2xO3 thin films on silicon in the full range of Eu3+ concentration by direct liquid injection chemical vapor deposition (CVD). Our sub-micrometer polycrystalline films with a strong-(111) texture were grown for all compositions into the bixbyite cubic phase. The variation of growth rates with temperature and flow indicated that deposition occurred through a mass-transport controlled regime. Optical assessment of the Eu-doped thin films showed inhomogeneous linewidths as narrow as 50GHz and fluorescence lifetimes of 1ms for the lowest concentrations. Finally, a spectral hole was successfully burned in a 200nm-thin film with a 2% Eu doping leading to a homogeneous linewidth of 11MHz. These values are still below those reported for bulk single crystals indicating that additional decoherence mechanisms exist in such nanometric films, which might be alleviated by further improvement of the crystalline quality. Nevertheless, these results pave the way to the use of CVD-grown Eu:Y2O3 thin films as a platform for integrated quantum devices.
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页数:9
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