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Label-free optical biosensors based on integrated photonic devices have demonstrated sensitive and selective detection of biological analytes. Integrating these sensor platforms into microfluidic devices reduces the required sample volume and enables rapid delivery of sample to the sensor surface, thereby improving response times. Conventionally, these devices are embedded in or adjacent to the substrate; therefore, the effective sensing area lies within the slow-flow region at the floor of the channel, reducing the efficiency of sample delivery. Recently, a suspended waveguide sensor was developed in which the device is elevated off of the substrate and the sensing region does not rest on the substrate. This geometry places the sensing region in the middle of the parabolic velocity profile, reduces the distance that a particle must travel by diffusion to be detected, and allows binding to both surfaces of the sensor. We use a finite element model to simulate advection, diffusion, and specific binding of interleukin 6, a signaling protein, to this waveguide-based biosensor at a range of elevations within a microfluidic channel. We compare the transient performance of these suspended waveguide sensors with that of traditional planar devices, studying both the detection threshold response time and the time to reach equilibrium. We also develop a theoretical framework for predicting the behavior of these suspended sensors. These simulation and theoretical results provide a roadmap for improving sensor performance and minimizing the amount of sample required to make measurements.
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http://dx.doi.org/10.3390/s121114327 | DOI Listing |
Micromachines (Basel)
July 2025
College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
This article aims to utilize a microelectromechanical system (MEMS) to modulate coupling behavior of silicon nitride (SiN) waveguides to perform an optical switch based on a directional coupling (DC) mechanism. There are two states of the switch. First state, a SiN wire is initially positioned up suspended in the air.
View Article and Find Full Text PDFSensors (Basel)
July 2025
State Key Laboratory for Tunnel Engineering, School of Civil Engineering, Sun Yat-Sen University, Guangzhou 510275, China.
Time domain reflectometry (TDR) has been validated for monitoring water level evolution and riverbed scouring in the laboratory. Previous studies have also validated the feasibility of field-based single hydrological parameter monitoring using TDR. However, the current research focuses on developing separated TDR sensing systems, and integrated measurements of multiple hydrological parameters from a single reflected waveform have not been reported.
View Article and Find Full Text PDFWe propose and demonstrate a high-performance suspended grating coupler on ultra-thin X-cut lithium niobate on insulator (LNOI) for fully-etched photonic devices. The optimized design achieves exceptional coupling efficiency (-3.5 dB at 1546.
View Article and Find Full Text PDFWe propose a suspended high-contrast grating metasurface for refractive index sensing, composed of silicon bars and air slots, with an ultrathin thickness of less than one-tenth of the operating wavelength. The grating geometry is designed to excite a quasi-accidental bound state in the continuum (quasi-A-BIC) by manipulating the coupling and interference of four symmetric waveguide-array modes (TM-TM). This quasi-A-BIC achieves a high factor of 10, enabling significant field enhancement on the metasurface.
View Article and Find Full Text PDFThis paper presents the design, fabrication, and experimental demonstration of a silicon photonic phase tuner that leverages slow-light effects in a suspended photonic crystal (PC) slot waveguide. The phase is tuned by electrostatic comb actuation which modulates the slot width within the PC defect thus achieving a high phase sensitivity enhancement relative to a conventional slot waveguide. The device is fabricated using a silicon photonic foundry process followed by post-processing steps to remove the oxide cladding and suspend the PC slot waveguide and electrostatic actuation combs.
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