DocumentCode
772627
Title
Capacitive micromachined ultrasonic transducers: fabrication technology
Author
Erguri, A.S. ; Huang, Yongli ; Zhuang, Xuefeng ; Oralkan, Ömer ; Yarahoglu, G.G. ; Khuri-Yakub, Butrus T.
Author_Institution
E.L. Ginzton Lab., Stanford Univ., CA, USA
Volume
52
Issue
12
fYear
2005
Firstpage
2242
Lastpage
2258
Abstract
Capacitive micromachined ultrasonic transducer (MUT) technology is a prime candidate for next generation imaging systems. Medical and underwater imaging and the nondestructive evaluation (NDE) societies have expressed growing interest in cMUTs over the years. Capacitive micromachined ultrasonic transducer technology is expected to make a strong impact on imaging technologies, especially volumetric imaging, and to appear in commercial products in the near future. This paper focuses on fabrication technologies for cMUTs and reviews and compares variations in the production processes. We have developed two main approaches to the fabrication of cMUTs: the sacrificial release process and the recently introduced wafer-bonding method. This paper gives a thorough review of the sacrificial release processes, and it describes the new wafer-bonding method in detail. Process variations are compared qualitatively and quantitatively whenever possible. Through these comparisons, it was concluded that wafer-bonded cMUT technology was superior in terms of process control, yield, and uniformity. Because the number of steps and consequent process time were reduced (from six-mask process to four-mask process), turn-around time was improved significantly.
Keywords
capacitive sensors; micromachining; microsensors; ultrasonic transducers; wafer bonding; capacitive micromachined ultrasonic transducer technology; fabrication technology; medical imaging; next generation imaging systems; nondestructive evaluation; process control; production processes; sacrificial release process; turn-around time; underwater imaging; uniformity; volumetric imaging; wafer-bonding method; yield; Biomedical imaging; Biomembranes; Etching; Fabrication; Machining; Micromachining; Process control; Temperature; Ultrasonic imaging; Ultrasonic transducers; Biotechnology; Electric Capacitance; Electronics, Medical; Equipment Design; Equipment Failure Analysis; Membranes, Artificial; Microelectrodes; Miniaturization; Transducers; Ultrasonography;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2005.1563267
Filename
1563267
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