高效嵌入式传输光栅

S. Ratzsch, E. Kley, A. Tünnermann, A. Szeghalmi
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引用次数: 1

摘要

在这项研究中,我们提出了由原子层沉积(ALD)产生的高效率嵌入式光栅。所选择的嵌入材料是纳米层状材料,它由交替排列的二氧化钛(TiO2)和氧化铝(Al2O3)层组成,其中TiO2层比Al2O3层厚25倍。因此,其折射率几乎等于纯TiO2层的折射率。二氧化钛是电介质中折射率最高的材料之一,在工作波长处不吸收。无针孔的光栅嵌入是必不可少的,因为即使是微小的气穴也会降低衍射光学的效率。这已经成功实现了。然而,ALD涂层会在嵌入光栅表面产生压痕。讨论了嵌入式光栅上多余层压痕的去除方法。通过离子束刻蚀实现表面的平面化,通过在O2气氛中热处理固定顶部TiO2组分的耗氧。最后,我们研制了一种在1030nm波长下透射效率超过97.0%的嵌入式光栅。实验测量的效率与通过严格的耦合波分析得到的理论值非常吻合。相比之下,在littrow结构下,具有相同周期的传统二元光栅在相同波长下的最大理论效率仅为92.3%。
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High-efficiency embedded transmission grating
In this study, we present high efficiency embedded gratings produced by atomic layer deposition (ALD). The chosen embedding material is a nanolaminate, which consists of alternating arranged titanium dioxide (TiO2) and alumina (Al2O3) layers, where the TiO2 layers are by a factor of 25 thicker than the Al2O3 layers. Consequently, the refractive index nearly equal to the refractive index of pure TiO2 layers. Titanium dioxide has one of the highest refractive index among dielectrics and no absorption at the operating wavelength. A pinhole free embedding of the grating is essential, since even tiny air pockets will reduce the efficiency of the diffraction optic. This has been successfully realized. However, the ALD coating produces indentations on the surface of the embedded grating. The method to remove the indentations in the excess layer on the embedded grating is discussed. The planarization is done by ion beam etching and the oxygen depletion of the top TiO2 component is fixed by thermal treatment in O2 atmosphere. Finally, we developed an embedded grating with transmission efficiency higher than 97.0 % at 1030 nm wavelength. The experimentally measured efficiency is in excellent agreement with the theoretical value obtained by rigorous coupled wave analysis. In contrast, a conventional, binary grating with the same period reaches only a maximum theoretical efficiency of 92.3 % at the same wavelength in Littrow-configuration.
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