Title :
Thermal-mechanical-noise-based CMUT characterization and sensing
Author :
Gurun, Gokce ; Hochman, Michael ; Hasler, Paul ; Degertekin, F. Levent
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fDate :
6/1/2012 12:00:00 AM
Abstract :
When capacitive micromachined ultrasonic transducers (CMUTs) are monolithically integrated with custom-designed low-noise electronics, the output noise of the system can be dominated by the CMUT thermal-mechanical noise both in air and in immersion even for devices with low capacitance. Because the thermal-mechanical noise can be related to the electrical admittance of the CMUTs, this provides an effective means of device characterization. This approach yields a novel method to test the functionality and uniformity of CMUT arrays and the integrated electronics when a direct connection to CMUT array element terminals is not available. Because these measurements can be performed in air at the wafer level, the approach is suitable for batch manufacturing and testing. We demonstrate this method on the elements of an 800-μm-diameter CMUT-on-CMOS array designed for intravascular imaging in the 10 to 20 MHz range. Noise measurements in air show the expected resonance behavior and spring softening effects. Noise measurements in immersion for the same array provide useful information on both the acoustic cross talk and radiation properties of the CMUT array elements. The good agreement between a CMUT model based on finite difference and boundary element methods and the noise measurements validates the model and indicates that the output noise is indeed dominated by thermal-mechanical noise. The measurement method can be exploited to implement CMUT-based passive sensors to measure immersion medium properties, or other parameters affecting the electro-mechanics of the CMUT structure.
Keywords :
CMOS integrated circuits; acoustic noise measurement; boundary-elements methods; capacitive sensors; crosstalk; finite difference methods; microsensors; thermal noise; ultrasonic transducer arrays; CMUT array element terminals; CMUT characterization; CMUT-based passive sensors; CMUT-on-CMOS array; acoustic cross talk; batch manufacturing; boundary element methods; capacitive micromachined ultrasonic transducers; custom-designed low-noise electronics; device characterization; electrical admittance; expected resonance behavior; finite difference method; frequency 10 MHz to 20 MHz; immersion medium property; intravascular imaging; measurement method; noise measurements; radiation property; size 800 mum; spring softening effects; thermal-mechanical-noise; wafer level; Finite element methods; Impedance; Noise; Noise measurement; Sensors; Thermal noise; Transducers; Electronics, Medical; Equipment Design; Models, Theoretical; Signal-To-Noise Ratio; Transducers; Ultrasonography;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2012.2317