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Portable systems for detecting biomolecules have attracted considerable attention, owing to the demand for point-of-care testing applications. This has led to the development of lab-on-a-chip (LOC) devices. However, most LOCs are developed with a focus on automation and preprocessing of samples; fluorescence measurement, which requires additional off-chip detection instruments, remains the main detection method in conventional assays. By incorporating optical biosensors into LOCs, the biosensing system can be simplified and miniaturized. However, many optical sensors require an additional coupling device, such as a grating or prism, which complicates the optical path design of the system. In this study, we propose a new type of biosensor based on gradient waveguide thickness guided-mode resonance (GWT-GMR), which allows for the conversion of spectral information into spatial information such that the output signal can be recorded on a charge-coupled device for further analysis without any additional dispersive elements. A two-channel microfluidic chip with embedded GWT-GMRs was developed to detect two model assays in a buffer solution: albumin and creatinine. The results indicated that the limit of detection for albumin was 2.92 μg/mL for the concentration range of 0.8-500 μg/mL investigated in this study, and that for creatinine it was 12.05 μg/mL for the concentration range of 1-10,000 μg/mL. These results indicated that the proposed GWT-GMR sensor is suitable for use in clinical applications. Owing to its simple readout and optical path design, the GWT-GMR is considered ideal for integration with smartphones or as miniaturized displays in handheld devices, which could prove beneficial for future point-of-care applications.
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http://dx.doi.org/10.3390/s21020376 | DOI Listing |
Talanta
August 2025
State Key Laboratory of Marine Environmental Science, Xiamen University, Xiamen, 361102, China; College of the Environment and Ecology, Xiamen University, Xiamen, 361102, China; National Observation and Research Station for the Taiwan Strait Marine Ecosystem, Xiamen University, Zhangzhou, 363000, Ch
Phosphate and nitrite, two essential nutrients in marine ecosystems, exhibit dynamic concentration distributions due to complex biogeochemical processes. Accurate quantification of these nutrients requires analytical methods with both high sensitivity and a broad dynamic range. Here, we present an automated syringe pump-based analyzer coupled with a long pathlength liquid waveguide capillary cell (LWCC), incorporating a robust automated dilution program, for simultaneous determination of phosphate and nitrite in seawater across nanomolar and micromolar concentrations.
View Article and Find Full Text PDFAugmented reality head-mounted displays (AR-HMDs) utilizing diffractive waveguides have attracted considerable research attention. However, addressing color non-uniformity remains a key challenge in full-color waveguide displays employing volume holographic gratings (VHGs). This paper proposes an AR full-color waveguide display system addressing color non-uniformity.
View Article and Find Full Text PDFNat Mater
July 2025
School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai, P. R. China.
Hyperbolic polaritons facilitate nanoscale light manipulation, but strong field confinement limits their transmission across interfaces. Conversely, leaky waves can convert radiation from confined sources towards the far field. Here we combine hyperbolic polaritons and leaky wave radiation to demonstrate flatland leaky polaritonic wakes.
View Article and Find Full Text PDFHorn antennas are pivotal couplers for terahertz (THz) waveguide transmission systems, yet conventional designs usually prioritize the far-field performance mainly considering the long-distance wireless communication and radar applications, often overlooking the near-field beam pattern optimization. Here, we present a monolithic polymer-based THz horn-lens system fabricated via liquid-crystal display stereolithography (LCD-SLA) 3D printing. Through the structurally designed stepped gradient and the geometric focusing advantage of the lens, a near-Gaussian emission beam without sidelobes is achieved.
View Article and Find Full Text PDFLight Sci Appl
July 2025
Key Laboratory of Light Field Manipulation and Information Acquisition, and Shaanxi Key Laboratory of Optical Information Technology, School of Physical Science and Technology, Northwestern Polytechnical University, Xi'an, China.
Graphene's unique photothermoelectric (PTE) effect, combined with its compatibility for on-chip fabrication, promises its development in chip-integrated photodetectors with ultralow dark-current and ultrafast speed. Previous designs of on-chip graphene photodetectors required external electrical biases or gate voltages to separate photocarriers, leading to increased power consumption and complex circuitry. Here, we demonstrate a nonvolatile graphene p-i-n homojunction constructed on a silicon photonic crystal waveguide, which facilitates PTE-based photodetection without the need for electrical bias or gate voltages.
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