The obtention of quantum-grade rare-earth-doped oxide thin films that can be integrated with optical cavities and microwave resonators is of great interest for the development of scalable quantum devices. Among the different growth methods, chemical vapor deposition (CVD) offers high flexibility and has demonstrated the ability to produce oxide films hosting rare-earth ions with narrow linewidths. However, growing epitaxial films directly on silicon is challenging by CVD due to a native amorphous oxide layer formation at the interface. In this manuscript, we investigate the CVD growth of erbium-doped yttrium oxide (Er:Y2O3) thin films on different substrates, including silicon, sapphire, quartz, or yttria stabilized zirconia (YSZ). Alternatively, growth was also attempted on an epitaxial Y2O3 template layer on Si (111) prepared by molecular beam epitaxy (MBE) in order to circumvent the issue of the amorphous interlayer. We found that the substrate impacts the film morphology and the crystalline orientations, with different textures observed for the CVD film on the MBE-oxide/Si template (111) and epitaxial growth on YSZ (001). In terms of optical properties, Er3+ ions exhibit visible and IR emission features that are comparable for all samples, indicating a high-quality local crystalline environment regardless of the substrate. Our approach opens interesting prospects to integrate such films into scalable devices for optical quantum technologies.
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March 2025
Research Article|
March 19 2025
Erbium-doped yttrium oxide thin films grown by chemical vapor deposition for quantum technologies
Anna Blin
;
Anna Blin
(Investigation, Methodology, Writing – review & editing)
1
IRCP, CNRS, PSL Research University
, 11 rue Pierre et Marie Curie, 75005 Paris, France
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Alexander Kolar
;
Alexander Kolar
(Investigation, Writing – review & editing)
2
Pritzker School of Molecular Engineering, University of Chicago
, Chicago, Illinois 60637, USA
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Andrew Kamen
;
Andrew Kamen
(Investigation, Writing – review & editing)
2
Pritzker School of Molecular Engineering, University of Chicago
, Chicago, Illinois 60637, USA
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Qian Lin
;
Qian Lin
(Investigation, Writing – review & editing)
2
Pritzker School of Molecular Engineering, University of Chicago
, Chicago, Illinois 60637, USA
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Xiaoyang Liu
;
Xiaoyang Liu
(Investigation, Writing – review & editing)
2
Pritzker School of Molecular Engineering, University of Chicago
, Chicago, Illinois 60637, USA
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Aziz Benamrouche
;
Aziz Benamrouche
(Investigation)
3
INL, Université de Lyon, Ecole Centrale de Lyon, CNRS UMR 5270
, 69134 Ecully, France
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Romain Bachelet
;
Romain Bachelet
(Investigation, Writing – review & editing)
3
INL, Université de Lyon, Ecole Centrale de Lyon, CNRS UMR 5270
, 69134 Ecully, France
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Philippe Goldner
;
Philippe Goldner
(Funding acquisition, Writing – review & editing)
1
IRCP, CNRS, PSL Research University
, 11 rue Pierre et Marie Curie, 75005 Paris, France
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Tian Zhong
;
Tian Zhong
(Conceptualization, Funding acquisition, Investigation, Writing – review & editing)
2
Pritzker School of Molecular Engineering, University of Chicago
, Chicago, Illinois 60637, USA
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Diana Serrano
;
Diana Serrano
a)
(Conceptualization, Investigation, Supervision, Writing – original draft)
1
IRCP, CNRS, PSL Research University
, 11 rue Pierre et Marie Curie, 75005 Paris, France
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Alexandre Tallaire
Alexandre Tallaire
a)
(Conceptualization, Funding acquisition, Supervision, Writing – original draft)
1
IRCP, CNRS, PSL Research University
, 11 rue Pierre et Marie Curie, 75005 Paris, France
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Anna Blin
1
Alexander Kolar
2
Andrew Kamen
2
Qian Lin
2
Xiaoyang Liu
2
Aziz Benamrouche
3
Romain Bachelet
3
Philippe Goldner
1
Tian Zhong
2
Diana Serrano
1,a)
Alexandre Tallaire
1,a)
1
IRCP, CNRS, PSL Research University
, 11 rue Pierre et Marie Curie, 75005 Paris, France
2
Pritzker School of Molecular Engineering, University of Chicago
, Chicago, Illinois 60637, USA
3
INL, Université de Lyon, Ecole Centrale de Lyon, CNRS UMR 5270
, 69134 Ecully, France
Appl. Phys. Rev. 12, 011421 (2025)
Article history
Received:
October 15 2024
Accepted:
February 25 2025
Citation
Anna Blin, Alexander Kolar, Andrew Kamen, Qian Lin, Xiaoyang Liu, Aziz Benamrouche, Romain Bachelet, Philippe Goldner, Tian Zhong, Diana Serrano, Alexandre Tallaire; Erbium-doped yttrium oxide thin films grown by chemical vapor deposition for quantum technologies. Appl. Phys. Rev. 1 March 2025; 12 (1): 011421. https://doi.org/10.1063/5.0243958
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