Lattice distortion induced enhanced up-conversion luminescence from Er3+, Yb3+ codoped MgAl2O4 nanocrystals through Cr3+ incorporation
Abstract
Recently, rare earth activated nanomaterials have gained more attention due to their upconversion emission-based lighting applications. In this research, we report on the significant increase in red/green emission intensity with Er3+ , Yb3+, Cr3+ tridoping than Er3+, Yb3+ codoping in the MgAl2O4 nanocrystals. Four samples with the different compositions Mg0.94Er0.01Yb0.05Al2O4, Mg0.9Er0.05Yb0.05Al2O4, Mg0.89Er0.01Yb0.1Al2O4, and Mg0.93Er0.01Yb0.05Cr0.01Al2O4 were synthesized through the solution combustion method. Rietveld refinement confirmed a single-phase cubic spinel structure with the presence of lattice defects and octahedron distortion. Diffuse reflectance spectra showed the broad absorption bands ascribed to host defects( such as oxygen vacancies and cation antisite defects), sharp emission peaks characteristic of Er3+ and Yb3+ ions, and broad absorption bands attributed to characteristic of Cr3+ ions. Codoped samples exhibited green and red emissions characteristic of Er3+ , while 1 mol% Cr3+ incorporation led to enhanced red-green intensities and additional near-infrared emission from Cr3+ overlapping with Er3+ emission. This enhancement suggests the contribution of local lattice distortions in the tridoped sample toward strengthening the Yb3+ → Er3+ energy transfer. Consequently, the strong up-conversion photoluminescence exhibited by Er, Yb, and Cr tridoped MgAl2O4 nanocrystals highlights their potential for applications in display technologies and solid-state lighting.
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