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Dual-phase Er:Y_2O_3/MgO nanocomposites for mid-infrared solid-state lasers

机译:用于中红外固态激光器的双相Er:Y_2O_3 / MgO纳米复合材料

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In the pursuit of efficient mid-Infrared laser host materials, we developed a dual-phase nanocomposite composed of a majority species (MgO) which provides high thermal conductivity and a rare earth doped minority species (Er:Y_2O_3) featuring a low maximum-phonon energy. This material was prepared using a co-precipitation method where both components are synthesized together for intimate mixing on the smallest scale. Preparation parameters were tuned to achieve a small crystallite size in order to limit scattering at the grain boundaries between the two different species. Optical characterization of the prepared materials included percent transmission (%T) as well as Raman measurements and Er fluorescence spectroscopy. Once suitable transmissivity was achieved, %T results were compared to Mie scattering calculations to gauge the average grain size in the material; and we determined the smallest average Y_2O_3 grain sizes achieved in our materials so far was 80 nm in diameter.
机译:为了追求高效的中红外激光主体材料,我们开发了一种双相纳米复合材料,该复合材料由具有高热导率的多数种(MgO)和具有低最大声子的稀土掺杂少数种(Er:Y_2O_3)组成。活力。使用共沉淀法制备该材料,其中将两种组分合成在一起,以最小规模进行紧密混合。调整制备参数以实现较小的微晶尺寸,以限制两种不同物质之间晶界处的散射。所制备材料的光学表征包括透射百分率(%T)以及拉曼测量和Er荧光光谱。一旦达到合适的透射率,就将%T结果与Mie散射计算结果进行比较,以衡量材料中的平均晶粒尺寸;并且我们确定到目前为止,在我们的材料中获得的最小平均Y_2O_3晶粒直径为80 nm。

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