Amato Alex, Terreni Silvana, Granata Massimo, Michel Christophe, Sassolas Benoit, Pinard Laurent, Canepa Maurizio, Cagnoli Gianpietro
Laboratoire des Matériaux Avancés, CNRS/IN2P3, F-69622, Villeurbanne, France.
OPTMATLAB, Dipartimento di Fisica, Università di Genova, Via Dodecaneso 33, 16146, Genova, Italy.
Sci Rep. 2020 Feb 3;10(1):1670. doi: 10.1038/s41598-020-58380-1.
We have investigated by spectroscopic ellipsometry (SE, 190-1700 nm) the optical properties of uniform, amorphous thin films of TaO and NbO as deposited and after annealing, and after so-called "doping" with Ti atoms which leads to mixed oxides. TaO and Ti:TaO are currently used as high-index components in Bragg reflectors for Gravitational Wave Detectors. Parallel to the optical investigation, we measured the mechanical energy dissipation of the same coatings, through the so-called "loss angle" ϕ = Q, which quantifies the energy loss in materials. By applying the well-known Cody-Lorentz model in the analysis of SE data we have been able to derive accurate information on the fundamental absorption edge through important parameters related to the electronic density of states, such as the optical gap (E) and the energy width of the exponential Urbach tail (the Urbach energy E). We have found that E is neatly reduced by suitable annealing as is also perceptible from direct inspection of SE data. Ti-doping also points to a minor decrease of E. The reduction of E parallels a lowering of the mechanical losses quantified by the loss angle ϕ. The correlation highlights that both the electronic states responsible of Urbach tail and the internal friction are sensitive to a self-correlation of defects on a medium-range scale, which is promoted by annealing and in our case, to a lesser extent, by doping. These observations may contribute to a better understanding of the relationship between structural and mechanical properties in amorphous oxides.
我们通过光谱椭偏仪(SE,190 - 1700纳米)研究了TaO和NbO均匀非晶薄膜在沉积后、退火后以及在所谓用Ti原子“掺杂”形成混合氧化物后的光学性质。TaO和Ti:TaO目前被用作引力波探测器布拉格反射器中的高折射率组件。在进行光学研究的同时,我们通过所谓的“损耗角”ϕ = Q测量了相同涂层的机械能耗散,该损耗角量化了材料中的能量损失。通过在SE数据分析中应用著名的科迪 - 洛伦兹模型,我们能够通过与电子态密度相关的重要参数,如光学带隙(E)和指数乌尔巴赫尾的能量宽度(乌尔巴赫能量E),得出关于基本吸收边的准确信息。我们发现,通过适当退火,E明显降低,这从直接检查SE数据中也可明显看出。Ti掺杂也表明E略有降低。E的降低与由损耗角ϕ量化的机械损耗的降低相平行。这种相关性突出表明,负责乌尔巴赫尾的电子态和内摩擦都对中程尺度上缺陷的自相关敏感,退火会促进这种自相关,在我们的例子中,掺杂在较小程度上也会促进这种自相关。这些观察结果可能有助于更好地理解非晶氧化物中结构与机械性能之间的关系。