High-Quality Amorphous Silicon Carbide for Hybrid Photonic Integration Deposited at a Low Temperature

Journal Article (2023)
Author(s)

B. Lopez Rodriguez (TU Delft - ImPhys/Esmaeil Zadeh group)

R.J.H. van der Kolk (Kavli institute of nanoscience Delft, TU Delft - QN/Kavli Nanolab Delft)

Samarth Aggarwal (University of Oxford)

N. Sharma (TU Delft - ImPhys/Esmaeil Zadeh group)

Zizheng Li (TU Delft - ImPhys/Esmaeil Zadeh group)

Daniel van der Plaats (TU Delft - EKL Equipment, TU Delft - QN/Kavli Nanolab Delft)

T.C. Scholte (TU Delft - ImPhys/Pereira group)

Jin Chang (TU Delft - QN/Groeblacher Lab)

Simon Groeblacher (TU Delft - QN/Groeblacher Lab)

Silvania Pereira (TU Delft - ImPhys/Pereira group)

Harish Bhaskaran (University of Oxford)

Iman Esmaeil Zadeh (TU Delft - ImPhys/Esmaeil Zadeh group)

Research Group
ImPhys/Esmaeil Zadeh group
Copyright
© 2023 B. Lopez Rodriguez, R.J.H. van der Kolk, Samarth Aggarwal, N. Sharma, Z.Z.L. Li, D.W. van der Plaats, T.C. Scholte, J. Chang, S. Groeblacher, S.F. Pereira, Harish Bhaskaran, I.Z. Esmaeil Zadeh
DOI related publication
https://doi.org/10.1021/acsphotonics.3c00968
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 B. Lopez Rodriguez, R.J.H. van der Kolk, Samarth Aggarwal, N. Sharma, Z.Z.L. Li, D.W. van der Plaats, T.C. Scholte, J. Chang, S. Groeblacher, S.F. Pereira, Harish Bhaskaran, I.Z. Esmaeil Zadeh
Research Group
ImPhys/Esmaeil Zadeh group
Issue number
10
Volume number
10
Pages (from-to)
3748-3754
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Abstract

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.