| Literature DB >> 28772846 |
Xili Liao1,2, Xiaobo Jiang3,4, Qiuhong Yang5, Longfei Wang6, Danping Chen7.
Abstract
A series of Er3+/Tm3+ co-doped fluoride (ZBLAN) glasses and fibers was prepared and their fluorescence spectra was measured under excitation at 793 nm and 980 nm. Correlation between the self-absorption effect of rare-earth ions and the shift of the emission peak was investigated. With the increasing length of fiber, the emission peaks red-shift when self-absorption occurs at the upper level of emission transition or blue-shift when that occurs at the lower level. As a result of the strong self-absorption effect, Er3+/Tm3+ co-doped fibers mainly yield 1390-1470, 1850-1980, and 2625-2750 nm emissions when excited at 793 nm, and 1480-1580, 1800-1980, and 2625-2750 nm emissions when excited at 980 nm. Further, a broadband emission in the range of 1410-1580 nm covering the S + C communication band was obtained by the dual-pumping scheme of 793 nm and 980 nm. Results suggest that the dual-pumping scheme would be more effective and important for an Er3+/Tm3+ co-doped fiber amplifier working in the S + C communication band.Entities:
Keywords: Er3+/Tm3+; ZBLAN; broadband; fluoride fiber
Year: 2017 PMID: 28772846 PMCID: PMC5459017 DOI: 10.3390/ma10050486
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1(a) Differential scanning calorimeter (DSC) result of ZBLAN glass; (b) Cross-sectional view of fiber without PFA coating by EPMA.
Figure 2Absorption spectra of Er3+/Tm3+-doped glasses.
Figure 3Near-infrared emission spectra of glasses (with different concentrations) and fibers (with different lengths) when excited at (a) 793 nm and (b) 980 nm.
Figure 4Emission intensity ratios of (a) I1464 nm/I1536 nm and I1464 nm/I1808 nm under 793 nm excitation; and (b) I2708 nm/I1536 nm when excited at 793 nm and 980 nm.
Figure 5Mid-infrared emission spectra of glasses and fibers excited at (a) 793 nm (or 808 nm for glasses) and (b) 980 nm.
Figure 6Up-conversion emission spectra of glasses and fibers excited at (a) 793 nm (or 808 nm for glasses); and (b) 980 nm.
Figure 7Energy level diagrams of Er3+ and Tm3+ and energy transfer mechanisms for excitation at (a) 793 nm and (b) 980 nm.
Figure 8Schematic diagram of dual-pump and backward measurement system.
Figure 9NIR emission (a) spectrum of a 20 cm long fiber under 793 nm or 980 nm single-pump, and (b) spectra of fibers with varied length under the dual-pump at 793 nm and 980 nm. The driving voltage of 793 LD was fixed to 8 V. The inner picture shows the dual-pump spectrum of 20 cm long fiber.