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用于血管内压力和温度传感的精密微加工光纤探头。

Precision-Microfabricated Fiber-Optic Probe for Intravascular Pressure and Temperature Sensing.

作者信息

Poduval Radhika K, Coote Joanna M, Mosse Charles A, Finlay Malcolm C, Desjardins Adrien E, Papakonstantinou Ioannis

机构信息

Department of Electronic and Electrical EngineeringUniversity College LondonLondonWC1E 7JEU.K.

Department of Medical Physics and Biomedical EngineeringUniversity College LondonLondonWC1E 6BTU.K.

出版信息

IEEE J Sel Top Quantum Electron. 2021 Jan 29;27(4):7100412. doi: 10.1109/JSTQE.2021.3054727. eCollection 2021 Jul-Aug.

Abstract

Small form-factor sensors are widely used in minimally invasive intravascular diagnostic procedures. Manufacturing complexities associated with miniaturizing current fiber-optic probes, particularly for multi-parameter sensing, severely constrain their adoption outside of niche fields. It is especially challenging to rapidly prototype and iterate upon sensor designs to optimize performance for medical devices. In this work, a novel technique to construct a microscale extrinsic fiber-optic sensor with a confined air cavity and sub-micron geometric resolution is presented. The confined air cavity is enclosed between a 3 μm thick pressure-sensitive distal diaphragm and a proximal temperature-sensitive plano-convex microlens segment unresponsive to changes in external pressure. Simultaneous pressure and temperature measurements are possible through optical interrogation via phase-resolved low-coherence interferometry (LCI). Upon characterization in a simulated intravascular environment, we find these sensors capable of detecting pressure changes down to 0.11 mmHg (in the range of 760 to 1060 mmHg) and temperature changes of 0.036 °C (in the range 34 to 50 °C). By virtue of these sensitivity values suited to intravascular physiological monitoring, and the scope of design flexibility enabled by the precision-fabricated photoresist microstructure, it is envisaged that this technique will enable construction of a wide range of fiber-optic sensors for guiding minimally invasive medical procedures.

摘要

小型传感器广泛应用于微创血管内诊断程序。与当前光纤探头小型化相关的制造复杂性,特别是对于多参数传感,严重限制了它们在小众领域之外的应用。快速制作传感器设计原型并进行迭代以优化医疗设备的性能尤其具有挑战性。在这项工作中,提出了一种构建具有受限气腔和亚微米几何分辨率的微型外部光纤传感器的新技术。受限气腔被封闭在一个3μm厚的压敏远端隔膜和一个对外部压力变化无响应的近端热敏平凸微透镜段之间。通过相分辨低相干干涉测量法(LCI)进行光学询问,可以同时进行压力和温度测量。在模拟血管内环境中进行表征时,我们发现这些传感器能够检测低至0.11 mmHg(在760至1060 mmHg范围内)的压力变化和0.036 °C(在34至50 °C范围内)的温度变化。凭借这些适合血管内生理监测的灵敏度值,以及精密制造的光刻胶微结构所带来的设计灵活性,预计该技术将能够构建广泛的光纤传感器,以指导微创医疗程序。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a32e/7951063/2e02d895506f/poduv1-3054727.jpg

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