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利用稀土元素发光光谱和振动光谱跟踪钠钙玻璃的高压致密化过程。

Utilizing Rare-Earth-Elements Luminescence and Vibrational-Spectroscopies to Follow High Pressure Densification of Soda-Lime Glass.

作者信息

Werr Ferdinand, Yusim Weniamin, Bergler Michael, Shcheka Svyatoslav, Lenhart Armin, de Ligny Dominique

机构信息

Institute of Glass and Ceramics, Friedrich-Alexander University Erlangen-Nürnberg, Martensstrasse 5, D-91058 Erlangen, Germany.

Fakultät Werkstofftechnik, Nürnberg Institute of Technology Georg Simon Ohm, Wassertorstrasse 10, D-90489 Nürnberg, Germany.

出版信息

Materials (Basel). 2021 Apr 7;14(8):1831. doi: 10.3390/ma14081831.

Abstract

A new series of soda-lime glass naturally doped with Nd and doped with 0.2 wt% of EuO was densified in a multi-anvil press up to 21 GPa. The densities of the millimetric samples were precisely measured using a floatation method in a heavy liquid made with sodium polytungstate. The obtained densification curve is significantly different from the calibration previously reported, reaching a maximum densification saturation of 3.55 ± 0.14%. This difference could be due to better hydrostatic conditions realized in this new study. The densified samples were characterized using Raman and Brillouin spectroscopy, as well as the emission of both Eu and Nd. The evolution of the spectra was evaluated using integration methods to reduce error bars. The relative precision of the calibration curves is discussed. The evolution of Nd transition was found to be the most sensitive calibration. Linear dependence with the density was found for all observables, with exception for Brillouin spectroscopy showing a divergent behavior. The Brillouin shift shows an unreported minimum for a densification ~0.4%.

摘要

一系列新的天然掺杂钕并掺杂0.2 wt%氧化铕的钠钙玻璃在多砧压机中致密化至21 GPa。使用在由聚钨酸钠制成的重液中采用的浮选法精确测量了毫米级样品的密度。获得的致密化曲线与先前报道的校准曲线显著不同,达到了3.55±0.14%的最大致密化饱和度。这种差异可能是由于在这项新研究中实现了更好的静水条件。使用拉曼光谱和布里渊光谱以及铕和钕的发射对致密化样品进行了表征。使用积分方法评估光谱的演变以减少误差线。讨论了校准曲线的相对精度。发现钕跃迁的演变是最敏感的校准。除了布里渊光谱显示出发散行为外,所有可观测值都发现与密度呈线性相关。布里渊频移在致密化约0.4%时显示出未报道的最小值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff7a/8067970/021f67c2a086/materials-14-01831-g001.jpg

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