1] Key Laboratory of Materials for High Power Laser, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, PR China [2] Graduate School of Chinese Academy of Sciences, Beijing 100039, PR China.
Key Laboratory of Materials for High Power Laser, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, PR China.
Sci Rep. 2014 May 23;4:5053. doi: 10.1038/srep05053.
Er3+-doped fluorozirconate (ZrF4-BaF2-YF3-AlF3) and oxyfluoroaluminate glasses are successfully prepared here. These glasses exhibit significant superiority compared with traditional fluorozirconate glass (ZrF4-BaF2-LaF3-AlF3-NaF) because of their higher temperature of glass transition and better resistance to water corrosion. Judd-Ofelt (J-O) intensity parameters are evaluated and used to compute the radiative properties based on the VIS-NIR absorption spectra. Broad emission bands located at 1535 and 2708 nm are observed, and large calculated emission sections are obtained. The intensity of 2708 nm emission closely relates to the phonon energy of host glass. A lower phonon energy leads to a more intensive 2708 nm emission. The energy transfer processes of Er3+ ions are discussed and lifetime of Er3+:4I13/2 is measured. It is the first time to observe that a longer lifetime of the 4I13/2 level leads to a less intensive 1535 nm emission, because the lifetime is long enough to generate excited state absorption (ESA) and energy transfer (ET) processes. These results indicate that the novel glasses possess better chemical and thermal properties as well as excellent optical properties compared with ZBLAN glass. These Er3+-doped ZBYA and oxyfluoroaluminate glasses have potential applications as laser materials.
这里成功制备了 Er3+-掺杂氟锆酸盐(ZrF4-BaF2-YF3-AlF3)和氧氟铝酸盐玻璃。与传统的氟锆酸盐玻璃(ZrF4-BaF2-LaF3-AlF3-NaF)相比,这些玻璃具有更高的玻璃转变温度和更好的抗水腐蚀性,具有显著的优势。评估了 Judd-Ofelt(J-O)强度参数,并基于可见-近红外吸收光谱计算了辐射性能。观察到位于 1535nm 和 2708nm 的宽发射带,并获得了较大的计算发射截面。2708nm 发射的强度与基质玻璃的声子能量密切相关。较低的声子能量导致更强烈的 2708nm 发射。讨论了 Er3+离子的能量转移过程,并测量了 Er3+:4I13/2 的寿命。这是首次观察到较长的 4I13/2 能级寿命导致较弱的 1535nm 发射,因为寿命足够长,足以产生激发态吸收(ESA)和能量转移(ET)过程。这些结果表明,与 ZBLAN 玻璃相比,新型玻璃具有更好的化学和热性能以及优异的光学性能。这些掺 Er3+的 ZBYA 和氧氟铝酸盐玻璃具有作为激光材料的潜在应用。