Spectroscopy of solid-solution transparent sesquioxide laser ceramic Tm:LuYO3

Author:

Eremeev Kirill1,Loiko Pavel1,Braud Alain1,Camy Patrice1,Zhang Jian2,Xu Xiaodong3,Zhao Yongguang3ORCID,Liu Peng3,Balabanov Stanislav4ORCID,Dunina Elena5,Kornienko Alexey5,Fomicheva Liudmila6,Mateos Xavier7ORCID,Griebner Uwe,Petrov ValentinORCID,Wang LiORCID,Chen Weidong8ORCID

Affiliation:

1. Université de Caen

2. Shanghai Institute of Ceramics

3. Jiangsu Normal University

4. G. G. Devyatykh Institute of Chemistry of High-Purity Substances of the Russian Academy of Sciences

5. Vitebsk State Technological University

6. Belarusian State University of Informatics and Radioelectronics

7. Universitat Rovira i Virgili, URV

8. Fujian Institute of Research on the Structure of Matter

Abstract

We report on a detailed spectroscopic study of a Tm3+-doped transparent sesquioxide ceramic based on a solid-solution (lutetia – yttria, LuYO3) composition. The ceramic was fabricated using commercial oxide powders by hot isostatic pressing at 1600°C for 3 h at 190 MPa argon pressure. The most intense Raman peak in Tm:LuYO3 at 385.4 cm-1 takes an intermediate position between those for the parent compounds and is notably broadened (linewidth: 12.8 cm-1). The transition intensities of Tm3+ ions were calculated using the Judd-Ofelt theory; the intensity parameters are Ω2 = 2.537, Ω4 = 1.156 and Ω6 = 0.939 [1020 cm2]. For the 3F43H6 transition, the stimulated-emission cross-section amounts to 0.27 × 10−20 cm2 at 2059nm and the reabsorption-free luminescence lifetime is 3.47 ms (the 3F4 radiative lifetime is 3.85 ± 0.1 ms). The Tm3+ ions in the ceramic exhibit long-wave multiphonon-assisted emission extending up to at least 2.35 µm; a phonon sideband at 2.23 µm is observed and explained by coupling between electronic transitions and the dominant Raman mode of the sesquioxides. Low temperature (12 K) spectroscopy reveals a significant inhomogeneous spectral broadening confirming formation of a substitutional solid-solution. The mixed ceramic is promising for ultrashort pulse generation at >2 µm.

Funder

Agence Nationale de la Recherche

RELANCE” Chair of Excellence project funded by the Normandy Region

Russian Science Foundation

National Natural Science Foundation of China

Sino-German Scientist Cooperation and Exchanges Mobility Program

Publisher

Optica Publishing Group

Subject

Electronic, Optical and Magnetic Materials

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