An Integrated 2D Ultrasound Phased Array Transmitter in CMOS with Pixel Pitch-Matched Beamforming

Journal Article (2021)
Authors

Tiago L. Costa (TU Delft - Bio-Electronics)

Chen Shi (Columbia University)

Kevin Tien (Columbia University)

Jeffrey Elloian (Columbia University)

Filipe A. Cardoso (Columbia University)

Kenneth Shepard (Columbia University)

Research Group
Bio-Electronics
Copyright
© 2021 T.M. Lopes Marta da Costa, Chen Shi, Kevin Tien, Jeffrey Elloian, Filipe A. Cardoso, Kenneth Shepard
To reference this document use:
https://doi.org/10.1109/TBCAS.2021.3096722
More Info
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Publication Year
2021
Language
English
Copyright
© 2021 T.M. Lopes Marta da Costa, Chen Shi, Kevin Tien, Jeffrey Elloian, Filipe A. Cardoso, Kenneth Shepard
Research Group
Bio-Electronics
Issue number
4
Volume number
15
Pages (from-to)
731-742
DOI:
https://doi.org/10.1109/TBCAS.2021.3096722
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Abstract

Emerging non-imaging ultrasound applications, such as ultrasonic wireless power delivery to implantable devices and ultrasound neuromodulation, require wearable form factors, millisecond-range pulse durations and focal spot diameters approaching 100 μm with electronic control of its three-dimensional location. None of these are compatible with typical handheld linear array ultrasound imaging probes. In this work, we present a 4 mm × 5 mm 2D ultrasound phased array transmitter with integrated piezoelectric ultrasound transducers on complementary metal-oxide-semiconductor (CMOS) integrated circuits, featuring pixel-level pitch-matched transmit beamforming circuits which support arbitrary pulse duration. Our direct integration method enabled up to 10 MHz ultrasound arrays in a patch form-factor, leading to focal spot diameter of ∼200 μm, while pixel pitch-matched beamforming allowed for precise three-dimensional positioning of the ultrasound focal spot. Our device has the potential to provide a high-spatial resolution and wearable interface to both powering of highly-miniaturized implantable devices and ultrasound neuromodulation.

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