首页> 外文期刊>Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films >Crystallization, metastable phases, and demixing in a hafnia-titania nanolaminate annealed at high temperature
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Crystallization, metastable phases, and demixing in a hafnia-titania nanolaminate annealed at high temperature

机译:在高温退火的氧化钛-二氧化钛纳米层中的结晶,亚稳相和分解

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摘要

Nanolaminate films with a nominal 5 nm HfO2–4 nm TiO2 bilayer architecture are sputter deposited on unheated fused silica and Au-coated glass substrates. Films on fused silica are postdeposition annealed from 573 to 1273 K and characterized by x-ray diffraction, scanning electron microscopy, Raman microscopy, and UV-visible-near IR spectrophotometry. The films show weak but progressive crystallization into orthorhombic (o) HfTiO4 when annealed up to 973 K. o-HfTiO4 is expected to form under bulk thermodynamic equilibrium conditions in the case of complete mixing of the bilayer components. Annealing above 973 K produces a crystallization sequence that is not predicted by bulk thermodynamics, ultimately involving o-HfTiO4 demixing to form monoclinic HfO2 doped with Ti and rutile TiO2 doped with Hf. These phases have a higher atomic density than o-HfTiO4 and segregate into discrete mesoscopic features. The authors propose that o-HfTiO4 demixing into higher density phases is a mechanism for thermal stress relief at high temperature. Demixing results in a major loss of optical transparency in the visible and ultraviolet spectral regions.
机译:将具有标称5 nm HfO2–4 nm TiO2双层结构的纳米层压膜溅射沉积在未加热的熔融石英和Au涂层玻璃基板上。将熔融石英上的膜从573到1273 K进行后退火,并通过X射线衍射,扫描电子显微镜,拉曼显微镜和紫外可见近红外分光光度法进行表征。退火至973 K时,薄膜显示出微弱但逐渐结晶为斜方晶(o)HfTiO4。在双层组分完全混合的情况下,预计在整体热力学平衡条件下会形成o-HfTiO4。高于973 K的退火会产生大量热力学无法预测的结晶顺序,最终涉及o-HfTiO4混合分解形成掺杂Ti的单斜晶HfO2和掺杂Hf的金红石TiO2。这些相具有比邻HfTiO4更高的原子密度,并分离为离散的介观特征。作者提出将o-HfTiO4分解成更高密度的相是缓解高温热应力的一种机制。混合导致可见光和紫外线光谱区域的光学透明性的重大损失。

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