Eduard-Zintl-Institute of Inorganic and Physical Chemistry, Technische Universität Darmstadt, 64287, Darmstadt, Germany.
Institute of Reactive Flows and Diagnostics, Technische Universität Darmstadt, 64287, Darmstadt, Germany.
Sci Rep. 2018 Jan 12;8(1):602. doi: 10.1038/s41598-017-18942-2.
Recently developed laser-based measurement techniques are used to image the temperatures and velocities in gas flows. They require new phosphor materials with an unprecedented combination of properties. A novel synthesis procedure is described here; it results in hierarchically structured, hollow microspheres of Eu-doped YO, with unusual particle sizes and very good characteristics compared to full particles. Solution-based precipitation on polymer microballoons produces very stable and luminescent, ceramic materials of extremely low density. As a result of the - compared to established template-directed syntheses - reduced mass of polymer that is lost upon calcination, micron-sized particles are obtained with mesoporous walls, low defect concentrations, and nanoscale wall thicknesses. They can be produced with larger diameters (~25 µm) compared to known hollow spheres and exhibit an optimized flow behavior. Their temperature sensing properties and excellent fluidic follow-up behavior are shown by determining emission intensity ratios in a specially designed heating chamber. Emission spectroscopy and imaging, electron microscopy and X-ray diffraction results are presented for aerosolizable YO with an optimized dopant concentration (8%). Challenges in the field of thermofluids can be addressed by combined application of thermometry and particle image velocimetry with such hollow microparticles.
最近开发的基于激光的测量技术用于对气流中的温度和速度进行成像。它们需要具有前所未有的组合性能的新型荧光粉材料。本文描述了一种新的合成方法;它产生了具有独特颗粒尺寸的掺杂 Eu 的 Y2O3 分级结构空心微球,与完整颗粒相比具有非常好的特性。在聚合物微球上进行基于溶液的沉淀会产生非常稳定和发光的极低密度陶瓷材料。由于与已建立的模板导向合成相比 - 在煅烧时损失的聚合物质量减少,因此可以获得具有介孔壁、低缺陷浓度和纳米级壁厚度的微米级颗粒。与已知的空心球相比,它们可以具有更大的直径(~25 µm),并表现出优化的流动行为。通过在专门设计的加热室中确定发射强度比,显示了它们的温度感应特性和出色的流体跟踪行为。气溶胶化的 Y2O3(掺杂浓度为 8%)的发射光谱和成像、电子显微镜和 X 射线衍射结果被呈现。通过使用这种空心微球结合使用温度测量和粒子图像测速技术,可以解决热流领域的挑战。