An in vitro diagnostic kit and method for an embedded fluorescent labeling detection system
By employing precise optical design, sophisticated fluid control, and adaptive signal processing in the embedded fluorescent labeling detection system, the problems of optical interference and fluid pulsation were solved, enabling efficient physical separation and quantitative detection of multiple fluorescent labels, thus improving detection specificity and reliability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- CHENYANG ZHENGLIN TECHNOLOGY CO LTD
- Filing Date
- 2025-10-29
- Publication Date
- 2026-05-26
AI Technical Summary
Existing embedded fluorescent labeling detection systems face severe optical signal crosstalk, significant background noise interference, and insufficient fluid control precision when performing high-throughput multi-index joint detection, leading to decreased detection specificity and increased risk of false positives.
A micro-spectral filter assembly consisting of an excitation source array with precise wavelength alignment and eight dielectric films, combined with a 52° angled optical path design and a band-stop filter, achieves efficient physical separation of the excitation and emission spectra of multiple fluorescent markers. The fluid control module achieves sub-microliter precision fluid transmission through a micro-valve array driven by a thermosensitive shape memory alloy, a pulsation damper for the coupled air chamber, and a high-frequency sampling pressure feedback loop. The signal processing module constructs a crosstalk matrix using an adaptive spectral deconvolution algorithm and applies non-negative least squares method for mathematical separation.
It effectively overcomes signal crosstalk, improves the specificity and accuracy of multi-index joint detection, ensures the uniformity of the reaction system and the repeatability and reliability of the detection results, and improves the detection signal-to-noise ratio by two orders of magnitude.
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