Sparse 2-D PZT-on-PCB Arrays With Density Tapering

Journal Article (2022)
Authors

Luxi Wei (Erasmus MC)

Enrico Boni (University of Florence)

A. Ramalli (University of Florence)

F. Fool (ImPhys/Medical Imaging)

E. Noothout (ImPhys/Medical Imaging)

A Steen (ImPhys/Medical Imaging, Erasmus MC)

M. Verweij (ImPhys/Medical Imaging, Erasmus MC)

P. Tortoli (University of Florence)

N. de Jong (Erasmus MC, ImPhys/Medical Imaging)

H.J. Vos (ImPhys/Medical Imaging, Erasmus MC)

Research Group
ImPhys/Medical Imaging
Copyright
© 2022 Luxi Wei, Enrico Boni, Alessandro Ramalli, F. Fool, E.C. Noothout, A.F.W. van der Steen, M.D. Verweij, Piero Tortoli, N. de Jong, H.J. Vos
To reference this document use:
https://doi.org/10.1109/TUFFC.2022.3204118
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 Luxi Wei, Enrico Boni, Alessandro Ramalli, F. Fool, E.C. Noothout, A.F.W. van der Steen, M.D. Verweij, Piero Tortoli, N. de Jong, H.J. Vos
Research Group
ImPhys/Medical Imaging
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository 'You share, we take care!' - Taverne project https://www.openaccess.nl/en/you-share-we-take-care Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public.@en
Issue number
10
Volume number
69
Pages (from-to)
2798-2809
DOI:
https://doi.org/10.1109/TUFFC.2022.3204118
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Abstract

Two-dimensional (2-D) arrays offer volumetric imaging capabilities without the need for probe translation or rotation. A sparse array with elements seeded in a tapering spiral pattern enables one-to-one connection to an ultrasound machine, thus allowing flexible transmission and reception strategies. To test the concept of sparse spiral array imaging, we have designed, realized, and characterized two prototype probes designed at 2.5-MHz low-frequency (LF) and 5-MHz high-frequency (HF) center frequencies. Both probes share the same electronic design, based on piezoelectric ceramics and rapid prototyping with printed circuit board substrates to wire the elements to external connectors. Different center frequencies were achieved by adjusting the piezoelectric layer thickness. The LF and HF prototype probes had 88% and 95% of working elements, producing peak pressures of 21 and 96 kPa/V when focused at 5 and 3 cm, respectively. The one-way -3-dB bandwidths were 26% and 32%. These results, together with experimental tests on tissue-mimicking phantoms, show that the probes are viable for volumetric imaging.

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