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Liang Lou

Publications and source records attributed to Liang Lou.

3 recordsLinked to original sources

A Liquid Density Sensor Based On AlN Piezoelectric Micromachined Ultrasonic Transmitter Insensitive to Liquid Viscosity

To overcome the limitations of conventional liquid density sensors, MEMS-based approaches have been developed. However, the viscosity-density coupling effect often compromises accuracy in high-viscosity liquids. Although various decoupling strategies have been proposed, they often suffer from complexity and inefficiency. This study presents an AlN-based PMUT liquid density sensor insensitive to viscosity interference. The sensor employs two identical PMUTs, functioning as transmitter and receiver, respectively. An ultrasonic wave generated by the transmitter is reflected by the liquid surface and detected by the receiver. Theoretical calculations demonstrate that when the excitation frequency remains constant, the amplitude of the received electrical signal exhibits a specific relationship with liquid density, while the viscosity-induced signal amplitude variation becomes negligible. Therefore, after calibrating the PMUT liquid density sensor by fitting the relationship between received signal amplitude and density across 0-100% glycerol solutions, the device can measure densities within this range regardless of liquid type and viscosity. Experimental results show that the sensor can accurately measure the density of the propylene glycol solutions using the glycerol-calibrated fitting formula, with the calculated density error rate between measured propylene glycol solutions using the glycerol-calibrated fitting formula and actual densities remains below 0.125%, demonstrating measurement insensitivity to viscosity differences between the two liquids. The proposed method achieves maximum error rates of less than 2.5% in high-viscosity environments (80%-100% glycerol solutions), which is 20% that of other density measurement methods based on resonant frequency. The developed PMUT liquid density sensor exhibits a measurable density range from 0.789 to 1.261 g/cm3.

physics.app-ph

A Circular Crested Lamb Wave Resonator with Spurious Mode Suppression and Quality Factor Enhancement

To date, nearly all the reported Lamb wave resonators (LWRs) are straight crested LWRs, which suffer from inherent spurious modes and low quality factors (Q). For the first time, this work demonstrates a circular crested LWR. Its advantages over the straight crested LWR are presented comprehensively by studying their fundamental symmetric (S0) mode, which is the simplest and most representative Lamb wave mode. Utilizing circular crested Lamb waves, the proposed resonator avoids only utilizing waves propagating in the lateral direction in the straight crested LWRs, thus eliminating the transverse spurious modes as no transverse direction exists. Besides, different from straight crested Lamb waves maintaining the same displacement amplitude along the propagation direction, circular crested Lamb waves exhibit displacement attenuation toward device edges, which effectively concentrates energy in the device center, assists in reducing energy loss through anchors, and improves Q. Based on 20 at.% scandium-doped aluminum nitride (Al0.8Sc0.2N) thin films, the microfabricated circular crested LWR effectively suppresses transverse spurious modes and achieves a 40.7% Q improvement in experiments with no degradation in effective electromechanical coupling coefficients (keff2) compared with the conventional straight crested LWR when working in S0 mode in experiments, in contrast with the conventional straight crested LWR which shows inherent experimental transverse spurious modes. Moreover, the free edges covered by top electrodes enhance device robustness against misalignment and over-etching in the fabrication process. With the advantages of spurious mode suppression, Q enhancement, and fabrication robustness, the circular crested LWR is a promising candidate for next-generation filters and oscillators.

physics.app-ph

Photoacoustic Imaging Based on AlN MF-PMUT with Broadened Bandwidth

This paper reports an aluminum nitride (AlN) multi-frequency piezoelectric micromachined ultrasound transducers (MF-PMUT) array for photoacoustic (PA) imaging, where the broadened bandwidth is beneficial to improve imaging resolution. Specifically, PMUT based on micro-electromechanical systems (MEMS) technology is suitable for PA endoscopic imaging of blood vessels and bronchi due to its miniature size. More importantly, AlN is a non-toxic material, which makes it harmless for biomedical applications. In this work, a MF-PMUT array are designed and fabricated for PAI. The device's vibration mode impedance and bandwidth are analyzed. The MF-PMUT sensor provides a wider bandwidth (65%) signal detection, which increases the resolution of PAI compared with traditional PMUT. We conduct an experiment on agar sample to present sensor's performance in images' axial resolution.

physics.med-ph