Smart Hydrogel Swelling State Detection Based on a Power-Transfer Transduction Principle

自愈水凝胶 材料科学 分析物 传感器 生物医学工程 肿胀 的 转导(生物物理学) 响应时间 纳米技术 计算机科学 电气工程 化学 复合材料 色谱法 工程类 计算机图形学(图像) 高分子化学 生物化学
作者
Benozir Ahmed,Christopher F. Reiche,Jules J. Magda,Florian Solzbacher,Julia Körner
出处
期刊:ACS applied polymer materials [American Chemical Society]
卷期号:6 (9): 5544-5554 被引量:8
标识
DOI:10.1021/acsapm.4c00808
摘要

Stimulus-responsive (smart) hydrogels are a promising sensing material for biomedical contexts due to their reversible swelling change in response to target analytes. The design of application-specific sensors that utilize this behavior requires the development of suitable transduction concepts. The presented study investigates a power-transfer-based readout approach that is sensitive to small volumetric changes of the smart hydrogel. The concept employs two thin film polyimide substrates with embedded conductive strip lines, which are shielded from each other except at the tip region, where the smart hydrogel is sandwiched in between. The hydrogel's volume change in response to a target analyte alters the distance and orientation of the thin films, affecting the amount of transferred power between the two transducer parts and, consequently, the measured sensor output voltage. With proper calibration, the output signal can be used to determine the swelling change of the hydrogel and, consequently, to quantify the stimulus. In proof-of-principle experiments with glucose- and pH-sensitive smart hydrogels, high sensitivity to small analyte concentration changes was found along with very good reproducibility and stability. The concept was tested with two exemplary hydrogels, but the transduction principle in general is independent of the specific hydrogel material, as long as it exhibits a stimulus-dependent volume change. The application vision of the presented research is to integrate in situ blood analyte monitoring capabilities into standard (micro)catheters. The developed sensor is designed to fit into a catheter without obstructing its normal use and, therefore, offers great potential for providing a universally applicable transducer platform for smart catheter-based sensing.
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