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用于光子学的基于优化化学气相沉积的二氧化钛。

Optimized ICPCVD-Based TiO for Photonics.

作者信息

Andrieux Aurore, Mennemanteuil Marie-Maxime, Geoffroy Nicolas, Emo Mélanie, Markey Laurent, Hammani Kamal

机构信息

Laboratoire Interdisciplinaire Carnot de Bourgogne (ICB), Université Bourgogne Franche-Comté, 21078 Dijon, France.

Institute Jean Lamour, Université de Lorraine, 54000 Nancy, France.

出版信息

Materials (Basel). 2022 Mar 31;15(7):2578. doi: 10.3390/ma15072578.

Abstract

We propose obtaining TiO films by ICPCVD for the fabrication of low-loss waveguides. The challenge is to produce a dense and homogeneous layer with a high refractive index and low absorption in the visible range. Crystallized layers with features such as grains and amorphous layers have a rather low index for the application targeted, so we aimed for an intermediate state. We investigated the influence of plasma power, pressure, deposition time and annealing temperature on the structural, crystalline, and optical properties in order to tailor them. We showed that crystallization into rutile at the nanoscale occurred during deposition and under wisely chosen conditions, we reached a refractive index of 2.5 at 630 nm without creating interfaces or inhomogeneity in the layer depth. Annealing permits one to further increase the index, up to 2.6. TEM analysis on one sample before and after annealing confirmed the nano-polycrystallization and presence of both anatase and rutile phases and we considered that this intermediate state of crystallization was the best compromise for guided optics.

摘要

我们提议通过感应耦合等离子体化学气相沉积法(ICPCVD)制备TiO薄膜,用于制造低损耗波导。挑战在于要制备出在可见光范围内具有高折射率和低吸收率的致密且均匀的薄膜层。具有诸如晶粒等特征的结晶层和非晶层对于目标应用而言折射率相当低,所以我们致力于实现一种中间状态。我们研究了等离子体功率、压力、沉积时间和退火温度对结构、结晶和光学性能的影响,以便对其进行调整。我们发现,在沉积过程中会发生纳米级的向金红石型的结晶,并且在明智选择的条件下,我们在630纳米处达到了2.5的折射率,同时在层深方向上没有产生界面或不均匀性。退火可以使折射率进一步提高,最高可达2.6。对一个样品在退火前后进行的透射电子显微镜(TEM)分析证实了纳米多晶化以及锐钛矿相和金红石相的存在,并且我们认为这种结晶的中间状态是导波光学的最佳折衷方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69b9/8999815/432aae9a289b/materials-15-02578-g0A1.jpg

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