Issue 23, 2023

Exploring dual-emission properties in Mn4+ distinctively activated BaTaF7 red emitting phosphor

Abstract

Mn4+-activated fluoride phosphors, which exhibit narrow-band red light emission, have been extensively employed in white LED applications. However, the majority of existing research has predominantly focused on single-site emission phenomena of Mn4+ in fluoride matrices. The exploration of systems with multi-site Mn4+ luminescence is of significant importance, as it may promote the broader application of such materials. In this study, a dual-emission fluoride phosphor, BaTaF7:Mn4+ (BTF), was successfully synthesized, which exhibits two strong zero-photon line (ZPL) emissions at 627 and 630 nm. Density functional theory (DFT) calculations were employed to investigate the electronic structure and luminescence properties of the phosphor. The results suggest that Mn4+ ions tend to substitute for Ba2+ and Ta5+ in the BaTaF7 host lattice, leading to significant distortion of the Mn4+ local environment. This distortion gives rise to the dual-emission and short fluorescence lifetime of the synthesized phosphor. The white LED with BTF phosphor encapsulation shows high potential for display backlighting sources with its 113.4% NTSC color gamut achieved through RGB primary color spectral filtering. The synthesis and investigation of phosphor present a promising approach for designing and developing multi-emission Mn4+-activated fluoride phosphors with unique luminescent properties. This study provides new insights for optimizing the performance and expanding the applications of luminescent materials.

Graphical abstract: Exploring dual-emission properties in Mn4+ distinctively activated BaTaF7 red emitting phosphor

Supplementary files

Article information

Article type
Paper
Submitted
12 Apr 2023
Accepted
11 May 2023
First published
12 May 2023

J. Mater. Chem. C, 2023,11, 7603-7610

Exploring dual-emission properties in Mn4+ distinctively activated BaTaF7 red emitting phosphor

K. Chen, S. Jia, Z. Shao, X. Han, J. Yuan, Y. Zhou and T. Deng, J. Mater. Chem. C, 2023, 11, 7603 DOI: 10.1039/D3TC01294H

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