TY - JOUR
T1 - Specifics of Spectroscopic Features of Yb3+-Doped Lu2O3 Laser Transparent Ceramics
AU - Boulon, Georges
AU - Guyot, Yannick
AU - Guzik, Malgorzata
AU - Toci, Guido
AU - Pirri, Angela
AU - Patrizi, Barbara
AU - Vannini, Matteo
AU - Yoshikawa, Akira
AU - Kurosawa, Shunsuke
AU - Ikesue, Akio
N1 - Funding Information:
The following programs and Institutions are acknowledged. 1) Engineering and Science Lyon Tohoku Laboratory (ELyT) LIA (CNRS Associated International Laboratory) Program, Project M12 LASMAT, between iLM of the University of Lyon (France), IMR of the Tohoku University in Sendai (Japan), and World Lab. Co., Ltd in Nagoya (Japan). 2) The project POLONIUM from the Polish National Agency for Academic Exchange (NAWA) as well as the Ministries of Europe and Foreign Affairs (MEAE) and Higher Education, Research and Innovation (MESRI), for scientific exchange between Institute Light Matter (iLM), University Claude Bernard Lyon1 in France, and Faculty of Chemistry, University of Wroclaw in Poland. 3) The National Institute of Optics-National Research Council, CNR-INO, and the Institute of Applied Physics “N. Carrara”-National Research Council, CNR-IFAC, at Sesto Fiorentino in Italy.
Publisher Copyright:
© 2022 Wiley-VCH GmbH
PY - 2022/3
Y1 - 2022/3
N2 - Some specifics of spectroscopic and laser properties of Yb3+ dopant are shown in Yb3+-doped Lu2O3 cubic sesquioxide transparent ceramics, a very important laser material, fabricated by Akio Ikesue using the method based on solid-state mixing of oxides and sintering by hot isostatic pressing (HIP) technique. For instance, despite the simplicity of Yb3+ electronic configuration, it is emphasized that a lot of precautions need to be considered during the evaluation and the assignment of Yb3+ experimental data in this sample and also in all Yb3+-doped materials. First, we focus our discussion on the position of 2F7/2 (ground state) and 2F5/2 (excited state) Stark levels of the most populated C2 symmetry site, and on the presence of the magnetic dipole transitions from the C3i (S6) inversion symmetry site. Then, we point out the strong influence of the self-trapping and the self-quenching processes on the measurement of the 2F5/2(5) upper level decay time which needs the pin-hole method. Finally, we comment on the spectrum of the tuneable laser emission behaviour near 1033 nm with respect to the losses of the laser cavity without the laser emission near 1080 nm, as observed in other laser materials.
AB - Some specifics of spectroscopic and laser properties of Yb3+ dopant are shown in Yb3+-doped Lu2O3 cubic sesquioxide transparent ceramics, a very important laser material, fabricated by Akio Ikesue using the method based on solid-state mixing of oxides and sintering by hot isostatic pressing (HIP) technique. For instance, despite the simplicity of Yb3+ electronic configuration, it is emphasized that a lot of precautions need to be considered during the evaluation and the assignment of Yb3+ experimental data in this sample and also in all Yb3+-doped materials. First, we focus our discussion on the position of 2F7/2 (ground state) and 2F5/2 (excited state) Stark levels of the most populated C2 symmetry site, and on the presence of the magnetic dipole transitions from the C3i (S6) inversion symmetry site. Then, we point out the strong influence of the self-trapping and the self-quenching processes on the measurement of the 2F5/2(5) upper level decay time which needs the pin-hole method. Finally, we comment on the spectrum of the tuneable laser emission behaviour near 1033 nm with respect to the losses of the laser cavity without the laser emission near 1080 nm, as observed in other laser materials.
KW - LuO sesquioxide
KW - Yb dopant
KW - laser transparent ceramics
KW - optical spectroscopic properties
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U2 - 10.1002/pssb.202100521
DO - 10.1002/pssb.202100521
M3 - Article
AN - SCOPUS:85122351092
SN - 0370-1972
VL - 259
JO - Physica Status Solidi (B): Basic Research
JF - Physica Status Solidi (B): Basic Research
IS - 3
M1 - 2100521
ER -