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首页> 外文期刊>ACS applied materials & interfaces >Cerium-Doped Yttrium Aluminum Garnet Hollow Shell Phosphors Synthesized via the Kirkendall Effect
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Cerium-Doped Yttrium Aluminum Garnet Hollow Shell Phosphors Synthesized via the Kirkendall Effect

机译:通过Kirkendall效应合成的掺铈铈钇铝石榴石空心壳荧光粉

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摘要

We report, for the first time, the synthesis of the Y3Al5O_(12):Ce~(3+) hollow phosphor particles with a uniform size distribution via the Kirkendall effect, characterized by using a combination of in situ X-ray diffraction and high-resolution transmission electron microscopy analyses as a function of calcination temperature. The formation of hollow Y3Al5O_(12):Ce~(3+) particles was revealed to originate from the different diflusivities of atoms (Al and Y) in a diffusion couple, causing a supersaturation of lattice vacancies. The optical characterization using photoluminescence spectroscopy and scanning confocal microscopy clearly showed the evidence of YAG (yttrium aluminum garnet) hollow shells with emission at 545 nm. Another advantage of this methodology is that the size of hollow shells can be tunable by changing the size of initial nanotemplates that are spherical aluminum hydroxide nanoparticles. In this study, we synthesized the hollow shell particles with average diameters of 140 and 600 nm as representatives to show the range of particle sizes. Because of the unique structural and optical properties, the Y3Al5O_(12):Ce~(3+) hollow shells can be another alternative to luminescence materials such as quantum dots and organic dyes, which promote their utilization in various fields, including optoelectronic and nanobio devices.
机译:我们首次报道了通过柯肯德尔效应合成具有均匀尺寸分布的Y3Al5O_(12):Ce〜(3+)中空荧光粉颗粒的方法,其特征是结合使用原位X射线衍射和高光谱分辨率透射电子显微镜分析作为煅烧温度的函数。空心Y3Al5O_(12):Ce〜(3+)颗粒的形成被发现是由于扩散对中原子(Al和Y)的不同扩散性引起的,从而引起了晶格空位的过饱和。使用光致发光光谱学和扫描共聚焦显微镜的光学表征清楚地显示出YAG(钇铝石榴石)空心壳在545 nm处发射的证据。该方法的另一个优点是,中空壳的尺寸可以通过改变球形氢氧化铝纳米颗粒的初始纳米模板的尺寸来调节。在这项研究中,我们合成了平均直径分别为140和600 nm的空心壳颗粒,以显示粒径范围。由于其独特的结构和光学特性,Y3Al5O_(12):Ce〜(3+)中空壳可以替代诸如量子点和有机染料之类的发光材料,从而促进其在各个领域的应用,包括光电和纳米生物设备。

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