Tailoring defects to boost Eu3 <b>+</b> emission in MgGeO3 phosphors
Abstract
Owing to the centrosymmetric 4fn configuration of rare-earth ions, their electric-dipole 4f–4f transitions are parity-forbidden, resulting in low oscillator strengths and poor excitation efficiency. To overcome this limitation, in this work, we propose a synergistic defect-engineering strategy by introducing magnesium vacancies (VMg″) into MgGeO3:Eu3+ and systematically investigate their regulatory role in enhancing luminescence performance and the underlying microscopic mechanisms. Mg vacancies induce significant local lattice distortions around Eu3+ sites, breaking inversion symmetry and lifting the parity-forbidden nature of the electric-dipole 5D0→7F2 transition, thereby intrinsically enhancing the radiative transition probability and resulting in approximately threefold increases in both emission intensity and fluorescence lifetime. This work not only elucidates a general mechanism for synergistically tuning luminescence properties via cation-vacancy engineering but also substantially fills the research gap in Eu3+-doped Ge-based oxide systems, providing new insights for the rational design of high-efficiency and high-stability rare-earth luminescent materials.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (6)
Yang Yang
Wei Qin
International Joint Research Laboratory of Nano-Micro Architecture Chemistry, Institute of Theoretical Chemistry and College of Chemistry
Anqi Zhang
Jianfeng Wen
Advanced Energy Storage Technology Research Center Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 China
Ming Li
Yunlong Yu