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Novel yellowish-green single-phased spinel Mg 1-x Ba x Al 2 O 4 :Mn 2+ phosphor(s) for color rendering white-light-emitting diodes.

Authors :
Ain QU
Fazal T
Iqbal S
Mahmood S
Ismail B
Shah M
Khan AM
Bahadur A
Alotaibi KM
Alshalwi M
Source :
Luminescence : the journal of biological and chemical luminescence [Luminescence] 2024 Mar; Vol. 39 (3), pp. e4724.
Publication Year :
2024

Abstract

For white light-rendering research activities, interpretation by using colored emitting materials is an alternative approach. But there are issues in designing the white color emitting materials. Particularly, differences in thermal and decay properties of discrete red, green, and blue emitting materials led to the quest for the search of a single-phased material, able to emit primary colors for white light generation. The current study is an effort to design a simple, single-phase, and cost-effective material with the tunable emission of primary colors by a series of Mg <subscript>1-x</subscript> Ba <subscript>x</subscript> Al <subscript>2</subscript> O <subscript>4</subscript> :Mn <superscript>2+</superscript> nanopowders. Doping of manganese ion (Mn <superscript>2+</superscript> ) in the presence of the larger barium cation (Ba <superscript>2+</superscript> ) at tetrahedral-sites of the spinel magnesium aluminate (MgAl <subscript>2</subscript> O <subscript>4</subscript> ) structure led to the creation of antisite defects. Doped samples were found to have lower bandgaps compared with MgAl <subscript>2</subscript> O <subscript>4</subscript> , and hybridization of 3d-orbitals of Mn <superscript>2+</superscript> with O(2p), Mg(2s)/Al(2s3p) was found to be responsible for narrowing the bandgap. The distribution of cations at various sites at random results in a variety of electronic transitions between the valance band and oxygen vacancies as well as electron traps produced the antisite defects. The suggested compositions might be used in white light applications since they have three emission bands with centers at 516 nm (green), 464 nm (blue) and 622 nm (red) at an excitation wavelength of 380 nm. A detailed discussion to analyze the effects of the larger cationic radius of Ba <superscript>2+</superscript> on the lattice strain, unit cell parameters, and cell volumes using X-ray diffraction analysis is presented.<br /> (© 2024 John Wiley & Sons Ltd.)

Details

Language :
English
ISSN :
1522-7243
Volume :
39
Issue :
3
Database :
MEDLINE
Journal :
Luminescence : the journal of biological and chemical luminescence
Publication Type :
Academic Journal
Accession number :
38523053
Full Text :
https://doi.org/10.1002/bio.4724