Erbium-doped transparent glass ceramic optical fibres: Characterization using mass spectroscopy and molecular dynamics modeling

V. Mauroy, W. Blanc, M. Ude, S. Trzesien, B. Dussardier, C. Guillermier, X. Bidault, S. Chaussedent
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引用次数: 3

Abstract

Rare earth (RE) doped silica-based optical fibres with transparent glass ceramic (TGC) core were fabricated through the well-known modified chemical vapor deposition (MCVD) process without going through the commonly used stage of post-ceramming. The main characteristics of the RE-doped dielectric nanoparticles (DNP), their density and mean diameter in the fibres are dictated by various parameters. This paper reports on progresses in the fine characterization of the nanoparticles, particularly their dimensions and composition, using nanoscale mass spectroscopy and molecular dynamics modeling, and alteration of the spectroscopic properties of the erbium ions embedded within the phospho-silicate DNP. These results permit to get more insight into the complex process of the DNP self-nucleation and growth during the fibre fabrication process. This fabrication route could have important potentials in improving rare-earth-doped fibre amplifiers and laser sources.
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掺铒透明玻璃陶瓷光纤:利用质谱和分子动力学建模进行表征
采用著名的改性化学气相沉积(MCVD)工艺制备了具有透明玻璃陶瓷(TGC)芯的稀土(RE)掺杂硅基光纤,而无需经过常用的后陶瓷阶段。稀土掺杂的介电纳米粒子(DNP)的主要特性,其密度和在纤维中的平均直径是由各种参数决定的。本文报道了纳米颗粒的精细表征,特别是其尺寸和组成,利用纳米质谱和分子动力学模型,并改变了磷硅酸盐DNP中嵌入的铒离子的光谱性质的进展。这些结果使我们对纤维制备过程中DNP自核和生长的复杂过程有了更深入的了解。该工艺在改进掺稀土光纤放大器和激光源方面具有重要的潜力。
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