Tunable rare-earth-free white light emission in zinc phosphate glasses activated with Agmn+ clusters and Mn2+ ions

O. Soriano-Romero, S. Carmona-Téllez, G. Alarcón-Flores, R. Lozada-Morales, U. Caldiño, I. Juárez-Rayón, A. N. Meza-Rocha

Producción científica: Contribución a una revistaArtículorevisión exhaustiva

6 Citas (Scopus)

Resumen

ZnO–P2O5 glasses activated with Agmn+ clusters and Mn2+ ions were successfully synthetized by the melt-quenching method. X-ray diffraction patterns confirmed the glassy nature for doping concentrations up to 3.0 and 5.0 mol% of Ag+ and Mn2+ ions, respectively, whereas the Raman spectra in all cases displayed δ(P–O–P), νs(P–O–P), νs(PO2) and νas(PO2) vibrational modes, typical of a phosphate glass network. The emission spectra under 345 nm (Agmn+: S0 → S1 and Mn2+: 6A1(S) → 4T1(P) + 4E(D)), 385 nm (Agmn+: S0 → S1) and 407 nm (Mn2+: 6A1(S) → 4A1(G) + 4E(G) and Agmn+: S0 → S1) excitations, showed the broad band related to the superimposed Agmn+ cluster: S1 → S0, T2 → S0 and T1 → S0 radiative transitions along with the Mn2+: 4T1(G) → 6A1(S) one. Under 385 nm excitation, the Mn2+ emission transition is attained by energy transfer from Agmn+ clusters. Such excitations lead to emission tonalities in the bluish white to cold white (345 and 385 nm) and cold white to reddish orange (407 nm) ranges, with correlated color temperature (CCT) values in the 10,095-5371 K (345 nm), 14,768-6862 K (385 nm) and 8592-1633 K (407 nm) ranges. Purplish pink emissions upon 345 nm excitation were obtained as well. The white color tonalities together with the color rendering index (CRI) and absolute quantum yield (QY, external) values up to 95 Ra and 35%, respectively, revealed promissory features for rare-earth-free white light emitting diode applications. The Agmn+ cluster: S1 → S0 emission fitting by the Burstein model suggested that the non-radiative energy transfer is mainly mediated by an electric dipole-dipole interaction.

Idioma originalInglés
PublicaciónCeramics International
DOI
EstadoPublicada - 15 nov. 2022
Publicado de forma externa

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