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首页> 外文期刊>Applied optics >Co-precipitation of rare-earth-doped Y2O3 and MgO nanocomposites for mid-infrared solid-state lasers
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Co-precipitation of rare-earth-doped Y2O3 and MgO nanocomposites for mid-infrared solid-state lasers

机译:用于中红外固态激光器的稀土掺杂Y2O3和MgO纳米复合材料的共析出

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Mid-infrared, solid-state laser materials face three main challenges: (1) need to dissipate heat generated in lasing; (2) luminescence quenching by multiphonon relaxation; and (3) trade-off in high thermal conductivity and small maximum phonon energy. We are tackling these challenges by synthesizing a ceramic nanocomposite in which multiple phases will be incorporated into the same structure. The undoped majority species, MgO, will be the main carrier of high thermal conductivity, and the minority species, Er: Y2O3, will have low maximum phonon energy. There is also an inherent challenge in attempting to make a translucent part from a mixture of two different materials with two different indexes of refraction. A simple, co-precipitation technique has been developed in which both components are synthesized in situ to obtain intimate mixing. These powders compare well to commercially available ceramics, including their erbium spectroscopy, even when mixed as a composite, and can be air-fired to similar to 96% of theoretical density, yielding translucent parts. As the amount of Er: Y2O3 increases, the translucency decreases as the number of scattering sites start to coalesce into large patches. If the amount of Er: Y2O3 is sufficiently small and dispersed, the yttria grains will be pinned as individuals in a sea of MgO, leading to optimal translucency.
机译:中红外,固态激光材料面临三个主要挑战:(1)需要散发激光引起的热量; (2)多光弛豫的发光淬火; (3)高导热率和小的最大声子能量折衷。我们通过合成陶瓷纳米复合材料来解决这些挑战,其中多相将掺入相同的结构中。未掺杂的多数物种MgO将是高导热率的主要载体,少数物种ER:Y2O3,将具有低的最大声子能量。在尝试从两种不同材料的混合物中与两种不同的折射率的混合物制造半透明部分也存在固有的挑战。已经开发了一种简单的共析出技术,其中两个组件原位合成以获得紧密混合。这些粉末与市售的陶瓷相比,包括它们的铒光谱,即使将其作为复合材料混合,也可以吸烟至类似于理论密度的96%,产生半透明部件。随着ER的量:Y2O3增加,随着散射点的数量开始将其分为大斑块,半透明减少。如果ER的量:Y2O3足够小并分散,则yttrai颗粒将被固定为MgO海洋中的个体,导致最佳的半透明性。

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