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High-power CMUTs: design and experimental verification

Yamaner, Yalçın Feysel and Olçum, Selim and Oğuz, H. Kağan and Bozkurt, Ayhan and Köymen, Hayrettin and Atalar, Abdullah (2012) High-power CMUTs: design and experimental verification. IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control, 59 (6). pp. 1276-1284. ISSN 0885-3010

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Official URL: http://dx.doi.org/10.1109/TUFFC.2012.2318

Abstract

Capacitive micromachined ultrasonic transducers (CMUTs) have great potential to compete with piezoelectric transducers in high-power applications. As the output pressures increase, nonlinearity of CMUT must be reconsidered and optimization is required to reduce harmonic distortions. In this paper, we describe a design approach in which uncollapsed CMUT array elements are sized so as to operate at the maximum radiation impedance and have gap heights such that the generated electrostatic force can sustain a plate displacement with full swing at the given drive amplitude. The proposed design enables high output pressures and low harmonic distortions at the output. An equivalent circuit model of the array is used that accurately simulates the uncollapsed mode of operation. The model facilities the design of CMUT parameters for high-pressure output, without the intensive need for computationally involved FEM tools. The optimized design requires a relatively thick plate compared with a conventional CMUT plate. Thus, we used a silicon wafer as the CMUT plate. The fabrication process involves an anodic bonding process for bonding the silicon plate with the glass substrate. To eliminate the bias voltage, which may cause charging problems, the CMUT array is driven with large continuous wave signals at half of the resonant frequency. The fabricated arrays are tested in an oil tank by applying a 125-V peak 5-cycle burst sinusoidal signal at 1.44 MHz. The applied voltage is increased until the plate is about to touch the bottom electrode to get the maximum peak displacement. The observed pressure is about 1.8 MPa with -28 dBc second harmonic at the surface of the array.

Item Type:Article
Subjects:T Technology > TK Electrical engineering. Electronics Nuclear engineering
ID Code:19147
Deposited By:Ayhan Bozkurt
Deposited On:22 Aug 2012 10:56
Last Modified:22 Aug 2012 10:56

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