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Photoluminescence quenching by OH in Er- and Pr-doped glasses for 1.5 and 1.3 um optical amplifiers

机译:OH在1.5和1.3 um光学放大器的掺Er和Pr的玻璃中被OH猝灭

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Abstract: In this paper we report on the effect of hydroxyl (OH) groups on the photoluminescence in the near IR (1.5 and 1.3 $mu@m) in rare earth (Er, Pr)-doped glasses. The 1.5 $mu@m emission of Er-doped phosphate glasses was studied, before and after a special heat treatment. The luminescent lifetime of the 1.5 $mu@m emission increases substantially, typically from 3 ms up to 7.2 ms for a 2 mole% Er$- 2$/O$-3$/-doped phosphate glass, due to the controlled heat treatment. The increase in lifetime is ascribed to a decrease in OH- concentration, which is confirmed by IR-absorption spectroscopy. The quenching by OH is described by a simplified quenching model, which predicts the 1.5 $mu@m emission lifetime as a function of Er- concentration with the OH-concentration as parameter. It appears that the larger part of the OH groups is coupled to Er ions and thus acts as quenching center. Photoluminescence quenching by OH groups is also reported for the 1.3 $mu@m emission of Pr in GeS$-2$/-glasses: In pure OH-free GeS$-2$/ glass the 1.3 $mu@m emission lifetime is as high as 350 $mu@s, for a 400 ppm dopant level. In GeS$-2$/ glasses containing only small amounts of OH (approximately 100 ppm), this lifetime is less than 200 $mu@s. Both examples demonstrate that for the fabrication of efficient glass optical amplifiers at the telecommunication windows 1.3 and 1.5 $mu@m, the OH-impurity level of the host glass must be kept as low as possible.!8
机译:摘要:本文报道了稀土(Er,Pr)掺杂的玻璃中近红外(1.5和1.3μμm)上羟基(OH)对光致发光的影响。在特殊热处理前后,研究了掺Er磷酸盐玻璃的1.5μm辐射。由于控制的热处理,对于掺杂2摩尔%的Er $ -2 $ / O $ -3 $ /的磷酸盐玻璃,1.5μm的发射的发光寿命大大增加,通常从3ms到7.2ms。 。寿命的增加归因于OH-浓度的降低,这通过IR吸收光谱法得到证实。通过简化的猝灭模型描述了通过OH的猝灭,该模型以OH浓度为参数,预测了1.5μm的发射寿命与Er浓度的关系。似乎大部分的OH基团与Er离子偶联,因此起淬灭中心的作用。在GeS $ -2 $ /-玻璃中,Pr的1.3μm@m发光也被OH基团猝灭:在纯无OH的GeS $ -2 $ /玻璃中,1.3μm@ m的发光寿命为对于400 ppm的掺杂水平,高达350μs。在仅含少量OH(约100 ppm)的GeS $ -2 $ /玻璃中,该寿命小于200μs。这两个例子都表明,为了在通信窗口1.3和1.5μm下制造高效的玻璃光放大器,必须将主体玻璃的OH杂质水平保持得尽可能低。8

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