光子学
材料科学
碳化硅
谐振器
光电子学
非晶硅
无定形固体
高折射率聚合物
硅光子学
折射率
硅
碳化物
纳米技术
晶体硅
复合材料
有机化学
化学
作者
Bruno Lopez-Rodriguez,Roald van der Kolk,Samarth Aggarwal,Naresh Sharma,Zizheng Li,Daniel van der Plaats,Thomas Scholte,Jin Chang,Simon Gröblacher,Silvania F. Pereira,Harish Bhaskaran,Iman Esmaeil Zadeh
出处
期刊:ACS Photonics
[American Chemical Society]
日期:2023-09-21
卷期号:10 (10): 3748-3754
被引量:26
标识
DOI:10.1021/acsphotonics.3c00968
摘要
Integrated photonic platforms have proliferated in recent years, each demonstrating its unique strengths and shortcomings. Given the processing incompatibilities of different platforms, a formidable challenge in the field of integrated photonics still remains for combining the strengths of different optical materials in one hybrid integrated platform. Silicon carbide is a material of great interest because of its high refractive index, strong second- and third-order nonlinearities, and broad transparency window in the visible and near-infrared range. However, integrating silicon carbide (SiC) has been difficult, and current approaches rely on transfer bonding techniques that are time-consuming, expensive, and lacking precision in layer thickness. Here, we demonstrate high-index amorphous silicon carbide (a-SiC) films deposited at 150 °C and verify the high performance of the platform by fabricating standard photonic waveguides and ring resonators. The intrinsic quality factors of single-mode ring resonators were in the range of Qint = (4.7-5.7) × 105 corresponding to optical losses between 0.78 and 1.06 dB/cm. We then demonstrate the potential of this platform for future heterogeneous integration with ultralow-loss thin SiN and LiNbO3 platforms.
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