Measurement platform to characterize integrated photonic chips for fluid-based bio-sensing

Master Thesis (2022)
Author(s)

H. LIU (TU Delft - Mechanical Engineering)

Contributor(s)

G.J. Verbiest – Mentor (TU Delft - Dynamics of Micro and Nano Systems)

Satadal Dutta – Mentor (TU Delft - Dynamics of Micro and Nano Systems)

Faculty
Mechanical Engineering
Copyright
© 2022 Huaiyang LIU
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 Huaiyang LIU
Graduation Date
28-07-2022
Awarding Institution
Delft University of Technology
Project
Micro and Nano Engineering | Mechatronic System Design
Programme
Mechanical Engineering | Precision and Microsystems Engineering
Faculty
Mechanical Engineering
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Abstract

Micro-ring resonators based on silicon-on-insulator (SOI) waveguide are widely used as sensors due to their small size and high sensitivities. After being fabricated on an integrated photonic technology, it can be applied in bio-chemical analyses crucial for human health monitoring, disease diagnoses, etc.
In this project, we develop and construct a robust experimental setup based on the SOI based micro-ring resonator, which combines temperature control and modification of the waveguide cladding via surface treatments and microfluidic integration. The setup gives a controlled environment for characterizing the photonic chip under various chemical treatments or different physical ambient.
After the setup is built, several experiments were performed to test the optical characteristics of the ring resonator, under different scenarios. These include temperature control, treatment of chip surface with sodium chloride and glucose solutions at varying concentrations, and lastly chip-surface functionalization for biomarker detection. With these experiments (also validated by numerical simulations), we demonstrate the robustness and reliability of our setup.

Files

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- Embargo expired in 31-08-2024
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