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Studies on crystallisation behaviour of erbium doped phosphate glasses

机译:掺铒磷酸盐玻璃结晶行为的研究

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Phosphate glasses can dissolve high concentrations of rare earths and have excellent spectroscopic properties making them useful solid-state laser materials. Solid-state lasers doped with different rare-earth ions find applications in a wide range of LIDAR (Light Detection and Ranging) and sensing applications; phosphate glasses are useful host materials for many applications in the visible and near-infrared spectral regions. For example, trivalent erbium (Er~(3+)) doped phosphate glasses operate at the eye-safe wavelength of 1.54 μm and are used for range finding and sensing applications. Tm~(3+) doped solid-state lasers operating at ~ 2 μm can be used for wind-shear and turbulence monitoring. Similarly, Nd-doped metaphosphate glasses are the preferred gain medium for high-peak-power lasers used for fusion energy research because they can store optical energy at greater densities than other glass-types and can be fabricated in large sizes with high rare-earth ion concentration. This paper discusses issues affecting glass quality, with particular focus on defect formation, especially crystallisation. Avoiding crystallisation during processing is essential to form high quality laser cavities. The work presented explores some of the factors controlling these defects including contamination during melting. The crystallisation behaviour of the glass was investigated for several different phosphate glass compositions and different melting conditions, including melting duration, temperature and crucible material.
机译:磷酸盐玻璃可以溶解高浓度的稀土,具有优异的光谱性能,使其具有有用的固态激光材料。掺杂有不同稀土离子的固态激光器在各种LIDAR(光检测和测距)和传感应用中找到应用;磷酸盐玻璃是可见和近红外光谱区域中许多应用的有用主体材料。例如,三价铒(ER〜(3+))掺杂的磷酸盐玻璃在1.54μm的眼睛安全波长下运行,并用于测距和传感应用。 TM〜(3+)在〜2μm的掺杂固态激光器可用于风剪和湍流监测。类似地,Nd掺杂的偏磷酸盐玻璃是用于融合能源研究的高峰功率激光器的优选增益介质,因为它们可以将光学能量存储在更大的密度,而不是其他玻璃类型,并且可以用高稀土化制造大尺寸离子浓度。本文讨论了影响玻璃质量的问题,特别关注缺陷形成,特别是结晶。在加工过程中避免结晶是必不可少的,以形成高质量的激光腔。提出的工作探讨了控制这些缺陷的一些因素,包括在熔化过程中污染。研究了玻璃的结晶行为,对几种不同的磷酸盐玻璃组合物和不同的熔化条件,包括熔化持续时间,温度和坩埚材料。

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