Issue 20, 2015

Enhanced tunable color emission in transparent Ag/Mn2+ codoped zinc borate glasses for broad band light source

Abstract

Zinc borate oxyfluoride glasses containing silver ions (Ag+), Ag nanoclusters and manganese ions (Mn2+) have been successfully prepared using the melt-quenching method. Their structure and luminescent properties were evaluated using transmission electron microscopy (TEM), absorption measurements, steady and time-resolved photoluminescence spectra and fluorescence lifetime measurements. Benefitting from the unique excitation/emission characteristics of Ag nanoclusters in the matrix, the Ag singly doped glass exhibited intriguing wavelength dependent, broad band luminescent performance. After Mn2+ ions were built into the singly doped sample, the emission band was extended to white emission and the intensity was enhanced 13 times with a maximal quantum yield of 24.9%. It was demonstrated experimentally that dual-mode energy transfer does occur from isolated Ag+ and (or) Ag nanoclusters to Mn2+. At the same time, the addition of Mn2+ substantially promotes the formation of Ag nanoclusters. Direct spectroscopic evidence as well as the assumed mechanism have been presented for these processes. This research may help to devise a new perspective for the use of noble metal nanoclusters and transition metals in designing broad band tunable light source.

Graphical abstract: Enhanced tunable color emission in transparent Ag/Mn2+ codoped zinc borate glasses for broad band light source

Article information

Article type
Paper
Submitted
07 Mar 2015
Accepted
04 Apr 2015
First published
07 Apr 2015

J. Mater. Chem. C, 2015,3, 5183-5191

Enhanced tunable color emission in transparent Ag/Mn2+ codoped zinc borate glasses for broad band light source

X. Y. Liu, H. Guo, S. Ye, M. Y. Peng and Q. Y. Zhang, J. Mater. Chem. C, 2015, 3, 5183 DOI: 10.1039/C5TC00641D

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