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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >A Noninvasive Miniaturized Transcutaneous Oxygen Monitor
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A Noninvasive Miniaturized Transcutaneous Oxygen Monitor

机译:非侵入性小型化经皮氧显示器

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摘要

Transcutaneous monitoring is a noninvasive method to continuously measure the partial pressures of oxygen and carbon dioxide that diffuse through the skin and correlate closely with changes in blood gases. However, the contemporary commercially available electrochemical-based technology requires a heating mechanism and a bulky, corded, and expensive sensing unit. This study aims to demonstrate a prototype noninvasive, miniaturized monitor that uses luminescence-based technology to measure the partial pressure of transcutaneous oxygen, a surrogate of the partial pressure of arterial oxygen. To be able to build a robust measurement system, we conducted experiments to understand the temperature and humidity dependence of oxygen-sensitive platinum-porphyrin films. We performed a detailed analysis of both intensity and lifetime measurement techniques. To verify the performance, we tested the prototype in a small ex-vivo experiment involving three healthy human volunteers. We measured variations in the partial pressure of transcutaneous oxygen values due to pressure-induced arterial and venous occlusions on the volunteers' fingertips. The system resolves changes in the partial pressure of oxygen from 0 to 418 mmHg in the lab bench-top testing, covering the medically relevant range of 50-150 mmHg. Under fixed humidity, temperature, and the partial pressure of oxygen conditions, the sensor shows a 2% drift over 60 hours. The prototype consumes 9 mW of power from a 2.2 V external DC power supply.
机译:经皮监测是一种非侵入方法,用于连续测量氧气和二氧化碳的部分压力,这些二氧化碳通过皮肤扩散并与血气变化紧密相关。然而,当代商业市售电化学技术需要加热机构和庞大的,有线和昂贵的传感单元。本研究旨在展示原型非侵入性小型化监测仪,其使用发光的技术来测量经皮氧的部分压力,动脉氧的分压的替代。为了能够建立一个稳健的测量系统,我们进行了实验以了解氧敏感铂 - 卟啉膜的温度和湿度依赖性。我们对强度和寿命测量技术进行了详细的分析。为了验证性能,我们在涉及三个健康人类志愿者的小型ex-Vivo实验中测试了原型。由于志愿者指尖上的压力诱导的动脉和静脉闭塞,我们测量了经皮氧值的分压的变化。该系统在实验室台式测试中解析了0至418mmHg的氧气部分压力的变化,覆盖了50-150 mmHg的医学相关范围。在固定湿度,温度和氧气条件的分压下,传感器显示出60小时内的2%漂移。原型从2.2 V外部直流电源消耗9兆瓦的电源。

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