Unraveling Broadband Near-Infrared Luminescence in Cr3+-Doped Ca3Y2Ge3O12 Garnets: Insights from First-Principles Analysis

Author:

Zou Wei1,Lou Bibo1ORCID,Kurboniyon Mekhrdod S.12,Buryi Maksym3ORCID,Rahimi Farhod2,Srivastava Alok M.4,Brik Mikhail G.15678,Wang Jing9,Ma Chonggeng12ORCID

Affiliation:

1. School of Science and Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China

2. Center of Innovative Development of Science and New Technologies, National Academy of Sciences of Tajikistan, Dushanbe 734025, Tajikistan

3. Institute of Plasma Physics of the Czech Academy of Sciences, U Slovanky 2525/1a, 18200 Prague, Czech Republic

4. Current Lighting Solutions LLC., 1099 Ivanhoe Road, Cleveland, OH 44110, USA

5. Centre of Excellence for Photoconversion, Vinča Institute of Nuclear Sciences—National Institute of the Republic of Serbia, University of Belgrade, 11351 Belgrade, Serbia

6. Institute of Physics, University of Tartu, W. Ostwald Str. 1, 50411 Tartu, Estonia

7. Faculty of Science and Technology, Jan Długosz University, Armii Krajowej 13/15, PL-42200 Częstochowa, Poland

8. Academy of Romanian Scientists, 3 Ilfov, 050044 Bucharest, Romania

9. Ministry of Education Key Laboratory of Bioinorganic and Synthetic Chemistry, State Key Laboratory of Optoelectronic Materials and Technologies, School of Chemistry, Sun Yat-Sen University, Guangzhou 510275, China

Abstract

In this study, we conducted an extensive investigation into broadband near-infrared luminescence of Cr3+-doped Ca3Y2Ge3O12 garnet, employing first-principles calculations within the density functional theory framework. Our initial focus involved determining the site occupancy of Cr3+ activator ions, which revealed a pronounced preference for the Y3+ sites over the Ca2+ and Ge4+ sites, as evidenced by the formation energy calculations. Subsequently, the geometric structures of the excited states 2E and 4T2, along with their optical transition energies relative to the ground state 4A2 in Ca3Y2Ge3O12:Cr3+, were successfully modeled using the ΔSCF method. Calculation convergence challenges were effectively addressed through the proposed fractional particle occupancy schemes. The constructed host-referred binding energy diagram provided a clear description of the luminescence kinetics process in the garnet, which explained the high quantum efficiency of emission. Furthermore, the accurate prediction of thermal excitation energy yielded insights into the thermal stability of the compound, as illustrated in the calculated configuration coordinate diagram. More importantly, all calculated data were consistently aligned with the experimental results. This research not only advances our understanding of the intricate interplay between geometric and electronic structures, optical properties, and thermal behavior in Cr3+-doped garnets but also lays the groundwork for future breakthroughs in the high-throughput design and optimization of luminescent performance and thermal stability in Cr3+-doped phosphors.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Scientific and Technological Research Program of Chongqing Municipal Education Commission

National Young Foreign Talents Plan

2021 Chongqing Postdoctoral International Exchange Program of China Postdoctoral Science Foundation

Overseas Talents Plan of Chongqing Association for Science and Technology

Estonian Research Council

the Polish NCN projects

Ministry of Science, Technological Development, and Innovation of the Republic of Serbia

Publisher

MDPI AG

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