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.

1.
P.
Senellart
,
G.
Solomon
, and
A.
White
, “
High-performance semiconductor quantum-dot single-photon sources
,”
Nat. Nanotechnol.
12
(
2017
),
1026
1039
(
2017
).
2.
S.
Ourari
,
Ł.
Dusanowski
,
S. P.
Horvath
,
M. T.
Uysal
,
C. M.
Phenicie
,
P.
Stevenson
,
M.
Raha
,
S.
Chen
,
R. J.
Cava
,
N. P.
de Leon
, and
J. D.
Thompson
, “
Indistinguishable telecom band photons from a single erbium ion in the solid state
,” arXiv:2301.03564 (
2023
).
3.
J.
Wang
,
Y.
Zhou
,
Z.
Wang
,
A.
Rasmita
,
J.
Yang
,
X.
Li
,
H. J.
von Bardeleben
, and
W.
Gao
, “
Bright room temperature single photon source at telecom range in cubic silicon carbide
,”
Nat. Commun.
9
,
4106
(
2018
).
4.
D. D.
Awschalom
,
R.
Hanson
,
J.
Wrachtrup
, and
B. B.
Zhou
, “
Quantum technologies with optically interfaced solid-state spins
,”
Nat. Photonics
12
,
516
527
(
2018
).
5.
T.
Böttger
,
C. W.
Thiel
,
Y.
Sun
, and
R. L.
Cone
, “
Optical decoherence and spectral diffusion at 1.5 μm in Er3+:Y2SiO5 versus magnetic field, temperature, and Er3+ concentration
,”
Phys. Rev. B
73
,
075101
(
2006
).
6.
C.
Deshmukh
,
E.
Beattie
,
B.
Casabone
,
S.
Grandi
,
D.
Serrano
,
A.
Ferrier
,
P.
Goldner
,
D.
Hunger
, and
H.
de Riedmatten
, “
Detection of single ions in a nanoparticle coupled to a fiber cavity
,”
Optica
10
,
1339
1344
(
2023
).
7.
S.
Gupta
,
Y.
Huang
,
S.
Liu
,
Y.
Pei
,
N.
Tomm
,
R. J.
Warburton
, and
T.
Zhong
, “
Dual epitaxial telecom spin-photon interfaces with correlated long-lived coherence
,” arXiv:2310.07120 (
2023
).
8.
A. M.
Dibos
,
M.
Raha
,
C. M.
Phenicie
, and
J. D.
Thompson
, “
Atomic source of single photons in the telecom band
,”
Phys. Rev. Lett.
120
,
243601
(
2018
).
9.
G.
Niu
,
G.
Saint-Girons
, and
B.
Vilquin
, “
Chapter 17—Epitaxial systems combining oxides and semiconductors
,” in
Molecular Beam Epitaxy
, 2nd ed., edited by
M.
Henini
(
Elsevier
,
2018
), pp.
377
402
. .
10.
G.
Saint-Girons
,
R.
Bachelet
,
R.
Moalla
,
B.
Meunier
,
L.
Louahadj
,
B.
Canut
,
A.
Carretero-Genevrier
,
J.
Gazquez
,
P.
Regreny
,
C.
Botella
,
J.
Penuelas
,
M. G.
Silly
,
F.
Sirotti
, and
G.
Grenet
, “
Epitaxy of SrTiO3 on silicon: The knitting machine strategy
,”
Chem. Mater.
28
,
5347
5355
(
2016
).
11.
A.
Ruiz-Caridad
,
G.
Marcaud
,
E.
Duran-Valdeiglesias
,
J. M.
Ramirez
,
J.
Zhang
,
C.
Alonso-Ramos
,
X.
LeRoux
,
L.
Largeau
,
S.
Serna
,
N.
Dubreuil
,
S.
Matzen
,
T.
Maroutian
,
P.
Lecoeur
,
D.
Marris-Morini
,
E.
Cassan
, and
L.
Vivien
, “
Heterogeneous integration of doped crystalline zirconium oxide for photonic applications
,”
IEEE J. Sel. Top. Quantum Electron.
28
,
1
13
(
2022
).
12.
V.
Astié
,
C.
Millon
,
J. M.
Decams
, and
A.
Bartasyte
, “
Direct liquid injection chemical vapor deposition
,” in
Chemical Vapor Deposition Nanotechnology
, edited by
P.
Mandracci
(
IntechOpen
,
2019
), pp.
2
23
.
13.
N.
Jehanathan
,
O.
Lebedev
,
I.
Galard
,
C.
Dubourdieu
, and
G. V.
Tendeloo
, “
Structure and defect characterization of multiferroic ReMnO3 films and multilayers by TEM
,”
Nanotechnology
21
,
075705
(
2010
).
14.
R. M.
Mc Farlane
and
R. M.
Shelby
, “
Sub-kilohertz optical linewidths of the 7F0 ↔ 5D0 transition in Y2O3:Eu3+
,”
Opt. Commun.
39
,
169
171
(
1981
).
15.
R.
Lo Nigro
,
R. G.
Toro
,
G.
Malandrino
,
G. G.
Condorelli
,
V.
Raineri
, and
I. L.
Fragalà
, “
Praseodymium silicate as a high-k dielectric candidate: An insight into the Pr2O3-film/Si-substrate interface fabricated through a metal–organic chemical vapor deposition process
,”
Adv. Funct. Mater.
15
,
838
845
(
2005
).
16.
G. P.
Flinn
,
K. W.
Jang
,
J.
Ganem
,
M. L.
Jones
,
R. S.
Meltzer
, and
R. M.
Macfarlane
, “
Anomalous optical dephasing in crystalline Y2O3:Eu3+
,”
J. Lumin.
58
,
374
379
(
1994
).
17.
N.
Harada
,
A.
Ferrier
,
D.
Serrano
,
M.
Persechino
,
E.
Briand
,
R.
Bachelet
,
I.
Vickridge
,
J.-J.
Ganem
,
P.
Goldner
, and
A.
Tallaire
, “
Chemically vapor deposited Eu3+:Y2O3 thin films as a material platform for quantum technologies
,”
J. Appl. Phys.
128
,
055304
(
2020
).
18.
N.
Harada
,
A.
Tallaire
,
D.
Serrano
,
A.
Seyeux
,
P.
Marcus
,
X.
Portier
,
C.
Labbe
,
P.
Goldner
, and
A.
Ferrier
, “
Controlling the interfacial reactions and environment of rare-earth ions in thin oxide films towards wafer-scalable quantum technologies
,”
Mater. Adv.
3
,
300
(
2022
).
19.
M. K.
Singh
,
A.
Prakash
,
G.
Wolfowicz
,
J.
Wen
,
Y.
Huang
,
T.
Rajh
,
D. D.
Awschalom
,
T.
Zhong
, and
S.
Guha
, “
Epitaxial Er-doped Y2O3 on silicon for quantum coherent devices
,”
APL Mater.
8
,
031111
(
2020
).
20.
R.
Bachelet
,
D.
Pesquera
,
G.
Herranz
,
F.
Sánchez
, and
J.
Fontcuberta
, “
Persistent two-dimensional growth of (110) manganite films
,”
Appl. Phys. Lett.
97
,
121904
(
2010
).
21.
I.
Ohno
,
K.
Harada
, and
C.
Yoshitomi
, “
Temperature variation of elastic constants of quartz across the α–β transition
,”
Phys. Chem. Miner.
33
,
1
9
(
2006
).
22.
M.-H.
Cho
,
D.-H.
Ko
,
Y. G.
Choi
,
I. W.
Lyo
,
K.
Jeong
, and
C. N.
Whang
, “
Effects of SiO2 overlayer at initial growth stage of epitaxial Y2O3 film growth
,”
J. Cryst. Growth
220
,
501
509
(
2000
).
23.
I. G.
Balașa
,
M. A.
Arranz-Martinez
,
P.
Perrin
,
M.
Ngandeu Ngambou
,
A.
Hebbrecht
,
D.
Serrano
,
J.
Achard
,
A.
Tallaire
, and
P.
Goldner
, “
Rare earth-diamond hybrid structures for optical quantum technologies
,”
Adv. Opt. Mater.
12
,
2401487
(
2024
).
24.
T.
Rajh
,
L.
Sun
,
S.
Gupta
,
J.
Yang
,
H.
Zhang
, and
T.
Zhong
, “
Hyperfine interactions and coherent spin dynamics of isotopically purified 167Er3+ in polycrystalline Y2O3
,”
Mater. Quantum Technol.
2
,
045002
(
2022
).
25.
S.
Gupta
,
X.
Wu
,
H.
Zhang
,
J.
Yang
, and
T.
Zhong
, “
Robust millisecond coherence times of erbium electron spins
,”
Phys. Rev. Appl.
19
,
044029
(
2023
).
26.
R.
Fukumori
,
Y.
Huang
,
J.
Yang
,
H.
Zhang
, and
T.
Zhong
, “
Subkilohertz optical homogeneous linewidth and dephasing mechanisms in Er3+:Y2O3 ceramics
,”
Phys. Rev. B
101
,
214202
(
2020
).
27.
M. K.
Alqedra
,
C.
Deshmukh
,
S.
Liu
,
D.
Serrano
,
S. P.
Horvath
,
S.
Rafie-Zinedine
,
A.
Abdelatief
,
L.
Rippe
,
S.
Kröll
,
B.
Casabone
,
A.
Ferrier
,
A.
Tallaire
,
P.
Goldner
,
H.
de Riedmatten
, and
A.
Walther
, “
Optical coherence properties of Kramers' rare-earth ions at the nanoscale for quantum applications
,”
Phys. Rev. B
108
,
075107
(
2023
).
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