用于植入式传感应用的智能水凝胶超声谐振器的表征

Navid Farhoudi, P. Kairy, J. Magda, F. Solzbacher, C. Reiche
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引用次数: 0

摘要

许多生物医学传感概念对分析物的持续监测依赖于在体内植入电子元件来操作,这引起了长期生物相容性的问题。在最近的报道中,报道了一种植入式传感模式,其中智能水凝胶谐振器在特定探测频率下的超声吸收用于跟踪分析物溶液的离子强度和葡萄糖浓度的变化。这种传感概念允许植入的组件不受电子器件的影响,在生物相容性和设备寿命方面具有相应的可能优势。然而,不合适的探测频率会破坏从植入物接收到的信号质量,甚至完全导致信号丢失。在这里,我们介绍了我们在创建超声表征系统并使用它来确定在给定频率窗口内水凝胶谐振器结构的最佳探测频率方面的工作。此外,我们证明了信号幅度取决于探测频率相对于智能水凝胶膨胀在固定动态范围内的频率响应峰的位置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of Smart Hydrogel-Based Ultrasound Resonators for Implantable Sensing Applications
Many biomedical sensing concepts for continuous monitoring of analytes rely on implanting electronic components inside the body to operate, which raises issues about long-term biocompatibility. In recent reports, an implantable sensing modality was reported in which ultrasound absorption in smart hydrogel resonators at a particular probing frequency is used to track the changes in ionic strength and glucose concentration of an analyte solution. This sensing concept allows the implanted component to be free from electronics, with corresponding possible advantages with respect to biocompatibility and lifetime of the device. However, an unsuitable probing frequency can undermine the received signal's quality from the implants or even entirely cause a signal loss. Here we present our work on creating an ultrasound characterization system and using it to determine optimum probing frequencies for the hydrogel resonator structures within a given frequency window. Furthermore, we demonstrate that the signal amplitude depends on the probing frequency's location relative to the frequency response peaks at a fixed dynamic range for swelling of smart hydrogels.
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