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A nanoforest-based humidity sensor for respiration monitoring

机译:一种基于纳米森林的湿度传感器,用于呼吸监测

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Traditional humidity sensors for respiration monitoring applications have faced technical challenges, including low sensitivity, long recovery times, high parasitic capacitance and uncalibrated temperature drift. To overcome these problems, we present a triple-layer humidity sensor that comprises a nanoforest-based sensing capacitor, a thermistor, a microheater and a reference capacitor. When compared with traditional polyimide-based humidity sensors, this novel device has a sensitivity that is improved significantly by 8 times within a relative humidity range of 40-90. Additionally, the integration of the microheater into the sensor can help to reduce its recovery time to 5 s. The use of the reference capacitor helps to eliminate parasitic capacitance, and the thermistor helps the sensor obtain a higher accuracy. These unique design aspects cause the sensor to have an excellent humidity sensing performance in respiration monitoring applications. Furthermore, through the adoption of machine learning algorithms, the sensor can distinguish different respiration states with an accuracy of 94. Therefore, this humidity sensor design is expected to be used widely in both consumer electronics and intelligent medical instrument applications.
机译:用于呼吸监测应用的传统湿度传感器面临着技术挑战,包括灵敏度低、恢复时间长、寄生电容高和温度漂移未校准。为了克服这些问题,我们提出了一种三层湿度传感器,它包括一个基于纳米森林的传感电容器、一个热敏电阻、一个微加热器和一个参考电容器。与传统的聚酰亚胺湿度传感器相比,这种新型器件的灵敏度在40-90%的相对湿度范围内显著提高了8倍。此外,将微加热器集成到传感器中有助于将其恢复时间缩短至 5 秒。使用基准电容有助于消除寄生电容,热敏电阻有助于传感器获得更高的精度。这些独特的设计方面使传感器在呼吸监测应用中具有出色的湿度传感性能。此外,通过采用机器学习算法,传感器可以区分不同的呼吸状态,准确率达到94%。因此,这种湿度传感器设计有望在消费电子和智能医疗器械应用中得到广泛应用。

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