Cui Baile, Wang Wen, Cheng Lina, Jin Jing, Hu Anyu, Ren Zixuan, Xue Xufeng, Liang Yong
State Key Laboratory of Acoustics, Institute of Acoustics, Chinese Academy of Sciences, Beijing, P. R. China.
University of Chinese Academy of Sciences, Beijing, P. R. China.
Commun Eng. 2025 Feb 1;4(1):15. doi: 10.1038/s44172-025-00347-z.
Acoustic impedance enables many interesting acoustic applications. However, acoustic impedance for gas sensing is rare and difficult. Here we introduce a micro-nano surface acoustic wave (SAW) chip based on the acoustic impedance effect to achieve ultra-fast and wide-range gas sensing. We theoretically established the relationship between surface load acoustic impedance and SAW attenuation, and analyzed the influence of acoustic impedance on acoustic propagation loss under different gas/humidity media. Experimental measurements reveal that the differences in acoustic impedance generated by different gases trigger different acoustic attenuation, and can achieve wide-range (0-100 v/v%) gas monitoring, with ultra-fast response and recovery speeds reaching sub-second levels (t < 1 s, t < 0.5 s) and detection limit of ~1 v/v%. This capability can also be perfectly utilized for human respiratory monitoring, accurately reflecting respiratory status, frequency, and intensity. Consequently, the SAW chip based on the acoustic impedance effect provides a new solution for in-situ detection of gas leaks and precise monitoring of human respiration.
声阻抗实现了许多有趣的声学应用。然而,用于气体传感的声阻抗却很少见且难度较大。在此,我们介绍一种基于声阻抗效应的微纳表面声波(SAW)芯片,以实现超快速和宽范围的气体传感。我们从理论上建立了表面负载声阻抗与SAW衰减之间的关系,并分析了在不同气体/湿度介质下声阻抗对声传播损耗的影响。实验测量表明,不同气体产生的声阻抗差异会引发不同的声衰减,并且能够实现宽范围(0 - 100 v/v%)的气体监测,具有超快速的响应和恢复速度,达到亚秒级水平(t < 1 s,t < 0.5 s),检测限约为1 v/v%。这种能力还可完美用于人体呼吸监测,准确反映呼吸状态、频率和强度。因此,基于声阻抗效应的SAW芯片为气体泄漏的原位检测和人体呼吸的精确监测提供了一种新的解决方案。