4.6 Article

Polyimide-Based High-Performance Film Bulk Acoustic Resonator Humidity Sensor and Its Application in Real-Time Human Respiration Monitoring

期刊

MICROMACHINES
卷 13, 期 5, 页码 -

出版社

MDPI
DOI: 10.3390/mi13050758

关键词

film bulk acoustic resonator (FBAR); humidity sensor; dual-parameter detecting; polyimide (PI); respiration monitoring

资金

  1. National Key Research and Development Project [2020YFC1512304, 2020YFC2003703]
  2. National Natural Science Foundation of China [62071451, 61871363]
  3. CAMS Innovation Fund for Medical Sciences [2019-I2M-5-019]

向作者/读者索取更多资源

This paper presents a polyimide-based film bulk acoustic resonator (PI-FBAR) humidity sensor for real-time human respiration monitoring with high sensitivity and stability. The sensor can sense different breathing conditions and rates, and has potential applications in health assessment and the medical field.
Respiration monitoring is vital for human health assessment. Humidity sensing is a promising way to establish a relationship between human respiration and electrical signal. This paper presents a polyimide-based film bulk acoustic resonator (PI-FBAR) humidity sensor operating in resonant frequency and reflection coefficient S-11 dual-parameter with high sensitivity and stability, and it is applied in real-time human respiration monitoring for the first time. Both these two parameters can be used to sense different breathing conditions, such as normal breathing and deep breathing, and breathing with different rates such as normal breathing, slow breathing, apnea, and fast breathing. Experimental results also indicate that the proposed humidity sensor has potential applications in predicting the fitness of individual and in the medical field for detecting body fluids loss and daily water intake warning. The respiratory rates measured by our proposed PI-FBAR humidity sensor operating in frequency mode and S-11 mode have Pearson correlation of up to 0.975 and 0.982 with that measured by the clinical monitor, respectively. Bland-Altman method analysis results further revealed that both S-11 and frequency response are in good agreement with clinical monitor. The proposed sensor combines the advantages of non-invasiveness, high sensitivity and high stability, and it has great potential in human health monitoring.

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