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首页> 外文期刊>Nanotechnology >Remarkably enhanced photoluminescence of hexagonal GdPO_4? nH_2O:Eu with decreasing size
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Remarkably enhanced photoluminescence of hexagonal GdPO_4? nH_2O:Eu with decreasing size

机译:六角形GdPO_4的光致发光显着增强。 nH_2O:Eu尺寸减小

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The hexagonal rhabdophane-type GdPO_4 hydrate (GdPO _4?nH_2O) was synthesized via a simple hydrothermal process. The size and morphology of the products can be tunable by adjusting the pH of reaction systems through the addition of aqueous NaOH. The nanorods with a width of 50-100 nm and a length of about 1 μm were obtained in the absence of NaOH (pH = 2), while a significant reduction of size (width: ~10 nm, length: ~50 nm) was observed for the product synthesized in the presence of NaOH (pH = 10). Surprisingly, the small-sized product exhibits a remarkably enhanced photoluminescence quantum yield and long excited state lifetime in comparison with those of the large-sized product. This abnormal luminescence phenomenon is discussed and explained. The EDS and XPS measurements revealed the presence of Na+ in the small-sized samples. These Na+ cations were probably bonded to the surface O~2- dangling bonds, which thus reduces the number of surface defects that usually serve as the nonradiative energy transfer center channels. A considerable reduction of surface defect centers results in the increase of the emission efficiency and excited state lifetime in a small-sized sample. Obviously, the controlled synthesis of rare-earth-doped nanoparticles with a small size, but with relatively strong luminescence, is significant for their applications in the areas of technologies including optoelectronics, sensing and bioimaging.
机译:通过简单的水热法合成了六方六方烷型GdPO_4水合物(GdPO _4→nH_2O)。通过添加NaOH水溶液调节反应体系的pH值,可以调节产物的大小和形态。在没有NaOH(pH = 2)的情况下,获得了宽度为50-100 nm,长度约为1 μm的纳米棒,同时尺寸明显减小(宽度:〜10 nm,长度:〜50 nm)。观察到在NaOH(pH = 10)存在下合成的产物。令人惊讶的是,与大尺寸产品相比,小尺寸产品显示出显着增强的光致发光量子产率和长激发态寿命。讨论并解释了这种异常的发光现象。 EDS和XPS测量表明,小尺寸样品中存在Na +。这些Na +阳离子可能键合在表面O〜2-悬空键上,从而减少了通常用作非辐射能量转移中心通道的表面缺陷的数量。表面缺陷中心的显着减少导致小型样品中发射效率和激发态寿命的增加。显然,尺寸较小但发光强度相对较高的稀土掺杂纳米颗粒的受控合成对其在光电子,传感和生物成像等技术领域的应用具有重要意义。

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