TY  - JOUR
T1  - SAW humidity sensor with oleic acid-modified SiO2 microsphere-supported GO film and acoustic wave driving optimization
T2  - Rapid response and low hysteresis
AU  - Chen, Ao Bei
AU  - Gao, Ge
AU  - Li, Dapeng
AU  - Zheng, Dezhi
N1  - Publisher Copyright:
© 2025 Elsevier B.V.
PY  - 2026/1/15
Y1  - 2026/1/15
N2  - Surface acoustic wave (SAW) humidity sensors have found successful applications in meteorological monitoring, respiratory diagnostics, and industrial process control. However, achieving both rapid response and low hysteresis while maintaining high sensitivity remains a significant challenge. To address this issue, we propose a novel SAW humidity sensor based on a three-dimensional (3D) composite film, where graphene oxide (GO) is supported by oleic acid (OA)-modified SiO2 microspheres (SiO2@OA/GO) to enhance water molecule transport while maintaining acoustic compatibility with the substrate. Furthermore, the intrinsic self-excited vibrations of the SAW device are harnessed to actively accelerate the adsorption and desorption of water molecules. Experimental results demonstrate that the SiO2@OA/GO-based sensor exhibits significantly improved performance, achieving a response/recovery time of 2.6/1.2 s and a hysteresis of 2.7 % relative humidity (RH) under 0 dBm driving power. When driven at the optimal power of 20 dBm, the response/recovery time is further reduced to 1.3/0.7 s, the hysteresis decreases to 1.1 % RH, and the quality factor increases to 2299. The sensor also shows good long-term stability and is successfully applied in real-time respiratory monitoring. These findings highlight the effectiveness of integrating material engineering with SAW excitation, providing a viable route toward efficient humidity sensing.
AB  - Surface acoustic wave (SAW) humidity sensors have found successful applications in meteorological monitoring, respiratory diagnostics, and industrial process control. However, achieving both rapid response and low hysteresis while maintaining high sensitivity remains a significant challenge. To address this issue, we propose a novel SAW humidity sensor based on a three-dimensional (3D) composite film, where graphene oxide (GO) is supported by oleic acid (OA)-modified SiO2 microspheres (SiO2@OA/GO) to enhance water molecule transport while maintaining acoustic compatibility with the substrate. Furthermore, the intrinsic self-excited vibrations of the SAW device are harnessed to actively accelerate the adsorption and desorption of water molecules. Experimental results demonstrate that the SiO2@OA/GO-based sensor exhibits significantly improved performance, achieving a response/recovery time of 2.6/1.2 s and a hysteresis of 2.7 % relative humidity (RH) under 0 dBm driving power. When driven at the optimal power of 20 dBm, the response/recovery time is further reduced to 1.3/0.7 s, the hysteresis decreases to 1.1 % RH, and the quality factor increases to 2299. The sensor also shows good long-term stability and is successfully applied in real-time respiratory monitoring. These findings highlight the effectiveness of integrating material engineering with SAW excitation, providing a viable route toward efficient humidity sensing.
KW  - Breath monitoring
KW  - Fast response
KW  - Humidity sensor
KW  - Surface acoustic wave (SAW)
UR  - http://www.scopus.com/pages/publications/105017556395
U2  - 10.1016/j.snb.2025.138889
DO  - 10.1016/j.snb.2025.138889
M3  - Article
AN  - SCOPUS:105017556395
SN  - 0925-4005
VL  - 447
JO  - Sensors and Actuators, B: Chemical
JF  - Sensors and Actuators, B: Chemical
M1  - 138889
ER  -